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Small modular reactor

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Illustration of a light water small modular nuclear reactor (SMR)

A small modular reactor (SMR) is an emergent class of nuclear fission reactors with a rated electrical power of less than 300 megawatts (MWe), which use modular design principles to achieve streamlined construction and enhanced scalability compared to large light-water reactors.[1][2] Many SMR designs are intended to be built in factories and transported to installation sites as prefabricated modules, while others are designed for flexible multi-unit configurations.[1]

The term SMR refers to the physical size, electrical capacity, and modular construction approach.[3] Reactor technology varies significantly among SMR designs. As of March 2026, most SMR designs are light-water reactors (LWRs),[4] however SMR concepts encompass various reactor types, including generation IV, thermal-neutron reactors, fast-neutron reactors, molten salt reactor, and gas-cooled reactor models.[4][5] Many SMRs also incorporate passive safety features.[1]

Commercial SMRs are designed to deliver an electrical power output as low as 10 MWe and up to 300 MWe per module.[a] Reactors below 10 MWe in capacity are considered nuclear microreactors.[7] SMRs may also be designed purely for desalination or process heat rather than electricity. These SMRs are measured in megawatts thermal (MWt). Many SMR designs plan for customers to simply add modules to achieve a desired electrical output rather than scaling the size of the reactor.[8]:53 These reactors are also expected to enhance safety through passive safety systems that operate without external power or human intervention during emergency scenarios, although this is not specific to SMRs but rather a characteristic of most modern reactor designs. SMRs are also claimed to have lower power plant staffing costs, as their operation is fairly simple,[9][10] and are claimed to have the ability to bypass financial and safety barriers that inhibit the construction of conventional reactors.[10][11]

SMRs have attracted strong interest from technology companies, such as Google and Microsoft, for use in powering data centers to meet demand driven by the AI boom.[12] Modular reactors are expected to reduce construction costs and time compared to large light-water reactors, as well as allow data center operators to draw power exclusively from a behind-the-meter SMR without purchasing electricity from the power grid.[13]

Definition

[edit]

According to the American Nuclear Society (ANS), while small or modular reactor concepts date back to the 1950s, the term "small modular reactor" first entered common use in the late 1970s.[14] Since then, the definition of an SMR has remained somewhat controversial.[15]

John Fabian, writing in Nuclear Newswire, stated in 2026 that until around 2011, the abbreviation "SMR" referred either to "small modular reactor" or "small and medium sized reactor". According to Fabian, "the way 'SMR' is being used today does not seem consistent and is design dependent."[3] For example, as of 2026 the United States Nuclear Regulatory Commission (NRC) defines SMRs as only light-water reactors under 300 MWe, while non-LWR designs are considered "advanced reactors".[3][16] At the same time, the World Nuclear Association defines SMRs as any reactor under 300 MWe so long as it is designed with modular technology.[4] According to Fabian, the classification of reactors as SMRs based on their power output has remained consistent, with reactors under 300 MWe being classified as SMRs.[3]

As of 2023, there was broad consensus in the nuclear industry that SMRs are defined as nuclear reactors designed intentionally for low power (below 300 MWe) and with modular design applied either to individual components or the entire assembly.[2]

Operational SMRs

[edit]

As of 2026, only China and Russia have successfully built operational SMRs.[17][18] Russia has been operating a floating nuclear power plant Akademik Lomonosov, in Russia's Far East (Pevek), commercially since 2020.[19] China's pebble-bed modular high-temperature gas-cooled reactor HTR-PM was connected to the grid in 2021.[20]

As of 2025, there were 127 modular reactor designs, with seven designs operating or under construction, 51 in the pre-licensing or licensing process, and 85 designers in discussions with potential site owners.[21]

Background

[edit]

While small modular reactors have experienced a resurgence in the 2000s, they are not a novel concept, and have been under development for many decades.[22]

Early small reactors

[edit]

Small reactors have been used for military use since the 1950s for nuclear marine propulsion.[23] The thermal output of the largest naval reactor as of 2025 is estimated at 700 MWt (the A1B reactor), similar in capacity to some large SMR plant designs. Naval nuclear reactors have had an excellent record of safety. According to public information, the US Navy's Naval Reactors program has never succumbed to a meltdown or radioactive release over its 60 years of service. In 2003, Admiral Frank Bowman backed up the Navy's claim by testifying no such accident has ever occurred.[24] Several nuclear-powered commercial vessels have also been constructed, including four nuclear freighters and nine nuclear icebreakers.[6]

Lawrence R. Hafstad, the Director of Reactor Development at the United States Atomic Energy Commission, proposed building small, cheap, transportable nuclear power packages for use in remote areas.[25][26] Alvin M. Weinberg, Director of Research at Oak Ridge National Laboratory (ORNL), wrote in support of Hafstad's proposal in 1952, adding that the naval reactors could provide a basis for developing nuclear power packages. He suggested that building many small reactors for remote sites would reduce the financial risk of establishing a nuclear industry:[25]

The main advantage of the power-package approach to establishment of a nuclear energy industry is that the technology would rely on comparatively many small units, rather than on a very few enormous ones. Thus industry would not try to hit the jackpot right off, but would edge into the business a little at a time and at each stage would be able to match its risk with its financial capability.

Alvin Weinberg, "Wanted: Smaller and More Reactors", Nucleonics (November 1952)

Between 1954 and 1977, the US Army experimented with powering military installations with small land-based reactors during the Army Nuclear Power Program.[4] The preliminary design for one such reactor was produced by ORNL under Weinberg's supervision.[27] One of the Army reactors, PM-2A, was noted as extensively utilizing prefabricated modules to achieve lower construction cost.[28]

Military small reactors are quite different from commercial SMRs. Historically, the military relied on highly enriched uranium (HEU) to power their reactors and not the low-enriched uranium (LEU) fuel used by SMRs. This is because submarine reactors are severely space-constrained and require higher power density than civilian reactors.[23] Many naval reactors also operate for over a decade or more without refueling.[23]

Early land-based reactors constructed in the United States were relatively small, such as the 60 MW Shippingport Atomic Power Station and the 250 MW Indian Point Unit 1. However, these reactors were intended to be scaled up into large central-station power plants, to take advantage of economies of scale. Soon after the first successful nuclear demonstrations, utilities raced to scale up plants before operational experience could be gained from smaller units.[29]:28–29 While traditional engineering wisdom dictates that a system should be scaled up twofold, by the time many nuclear plants with capacities exceeding 1000 MW were being ordered and constructed, no reactor larger than 250 MW was operational.[b] While nuclear power plants were formerly designed as effectively standardized designs, the growth of operational issues and new safety requirements led to plants being designed and built as "one-of-a-kind" designs, further increasing cost, construction, and licensing issues.[29] Reactor orders soon fell off sharply, and none of the plants ordered after 1974, except Watts Bar Unit 2, were ever constructed. The nuclear industry, throughout the following decades, would focus on optimizing the existing large reactors, whose average capacity factors rose from 50% to 90% by the mid-2000s.[8]

Renewed interest

[edit]

In 1982, the Electric Power Research Institute (EPRI) conducted a study that recommended smaller, less capital-intensive, and inherently safe reactors be designed instead of large light-water reactors. Weinberg, then the director of the Institute for Energy Analysis, conducted a related study into inherently safe reactors. It concluded that such a system was possible, and selected the 400 MW Swedish Process Inherent Ultimate Safety (PIUS) and 100 MW American Modular High Temperature Gas-cooled Reactor (MHTGR) designs as the most intrinsically safe.[29] At this time, multiple high-temperature gas-cooled reactors were being designed with the intention of building a large plant out of several modular low-power reactors.[30] The PIUS reactor,[31] with its reactor vessel situated within a large pool of borated water, and the robust TRISO fuel of the General Atomics MHTGR influenced subsequent SMR design features. Several small prefabricated reactor designs were developed around the same time in the UK, France, and Germany, however none were constructed. The EPRI study also led to the Department of Energy's (DOE) Advanced Light Water Reactor program, which resulted in the development of two 600 MW LWRs, the General Electric ABWR and later SBWR, and the Westinghouse AP-600 designs. However, these were later scaled up significantly into the ESBWR and AP-1000 reactors.[29] Two AP-1000 reactors were later constructed as Vogtle Units 3 and 4, together costing $30 billion due to delays and cost overruns.

The DOE also ran an Advanced Liquid-Metal Reactor program, which led to the development of the Power Reactor Inherently Safe Module (PRISM) SMR by General Electric in the 1980s and 1990s.[32][33] Each 1400 MW PRISM plant would be composed of nine 160 MW reactor modules, which would each be factory-fabricated and shipped by rail to the construction site.[34] PRISM's use of multiple factory-fabricated modules to comprise a large power plant and its extensive use of passive safety features were both carried into later SMR designs.[35][29] In 1983, the International Atomic Energy Agency started the Small and Medium Power Reactor Project Initiation Study to survey designs for small and medium sized reactors. The Nuclear Energy Agency launched a follow-on study in 1991 that evaluated 17 small or medium-sized reactor concepts, including several from the DOE's Advanced Light Water and Liquid-Metal programs.[29]

Government support for reactor design steadily declined, leading to the DOE being issued no budget for nuclear development at all in 1998. However, in 1999 the DOE began the Nuclear Energy Research Initiative (NERI), followed by the Generation IV International Forum in 2000, and later the Global Nuclear Energy Partnership (GNEP) in 2006. The NERI program resulted in the development of multiple SMR designs, including liquid metal-cooled reactors and SMRs designed for process heat, as well as others based on existing LWR technology.[8] In 2001, a report to Congress examining 50 MWe small modular reactors for powering remote areas, "found no substantive technical issues to hinder development and deployment of SMRs, and initial estimates of the electricity generation costs are comparable to, if not better than, those for current electricity supplies in typical remote areas."[36] One concept, the IRIS SMR, would later receive significant commercial interest and funding under the GNEP, while another, the MASLWR, later formed the basis for NuScale's SMR. The GNEP and its associated programs also catalyzed significantly greater industry and utility interest in developing SMRs.[8]

The term "small modular reactors" as opposed to "small-and-medium-sized reactors" was brought to wider use when US Secretary of Energy Steven Chu identified "small modular reactors" as "America's new nuclear option" in a 2010 Wall Street Journal op-ed, where he stated "SMRs would be ready to 'plug and play' upon arrival [on site]" and be more affordable.[2] He announced that President Barack Obama had requested $39 million for a new SMR design and licensing program.[37]

However, the reactors that were ordered at the time as part of the expected nuclear renaissance were all large light-water plants. Almost all of these projects failed, largely due to slow federal funding, little growth in electricity consumption, and the 2008 financial crisis, the effects of which were exacerbated by the high cost and financial risk of the plants.[22] The Fukushima accident in 2011, while resulting in a significant loss of interest in nuclear energy, drew increased attention to SMRs. In 2012, the DOE began its SMR program in earnest, by which point interest in SMRs was significant.[8]

Hope of enhanced safety and reduced costs

[edit]

Economic factors of scale mean that nuclear reactors tend to be large, to such an extent that size itself becomes a limiting factor.[citation needed] Furthermore, the 1986 Chernobyl disaster caused a major setback for the nuclear industry, with worldwide suspension of development, cuts in funding, and closure of reactor plants.[citation needed]

Proponents claim that SMRs would be less expensive due to the application of standardized modules that could be industrially produced off-site in a dedicated factory.[38] SMRs do, however, also have economic disadvantages.[39] Several studies suggest that the overall costs of SMRs are comparable with those of conventional large reactors. Moreover, extremely limited information about SMR modules transportation has been published.[40] Critics say that modular building will only be cost-effective for a high number of the same SMR type, given the still remaining high costs for each SMR.[41] A high market share is thus needed to obtain sufficient orders.

Contribution to the net zero emissions pathways

[edit]

In February 2024, the European Commission recognized SMR technology as an important contributor to decarbonization as part of the EU Green Deal.[42]

In its pathway to reach global net zero emissions by 2050, the International Energy Agency (IEA) considers that worldwide nuclear power should be doubled between 2020 and 2050.[43] Antonio Vaya Soler, an expert from the Nuclear Energy Agency (NEA), agrees that although renewable energy is essential to fight global warming, it will not be sufficient to achieve net zero CO2 emissions and nuclear energy capacity should be at least doubled.[44]

To produce the same electrical power as the ~ 400 large nuclear power reactors in the world today, BASE, the German Federal Office for the Safety of Nuclear Waste Management, warns that it would be necessary to build several thousand to tens of thousands of SMRs.[39][45]

Several fleets of SMRs of exactly the same type, industrially manufactured in large numbers, should be rapidly deployed worldwide to significantly reduce emissions of CO2. The Nuclear Energy Agency (NEA) launched at COP 28 an initiative Accelerating SMRs for Net Zero to foster collaboration between research organizations, nuclear industry, safety authorities, and governments, in order to reduce carbon emissions to net zero before 2050 to limit global surface temperature increase.[46][47][48]

Future challenges

[edit]

Proponents say that nuclear energy with proven technology can be safer; the nuclear industry contends that smaller size will make SMRs even safer than larger conventional plants. This is because the main problem associated with nuclear meltdowns is the decay heat that is present after reactor shutdown, which would be much lower for SMRs because of their lower power output. Critics say that many more[39] small nuclear reactors pose a higher risk, requiring more transportation of nuclear fuel and also increasing the production of radioactive waste.[49] SMRs require new designs with new technology, the safety of which has yet to be proven.

SMRs remain facing a distinct engineering risk of corrosion affecting critical systems and materials. Particularly in SMR systems that use liquid metals or molten salts cooling techniques.[50] Lack of a licensing process and safety framework has left limited SMRs in preventing potential corrosion levels produced in alternative SMR designs.[50]

Until 2020, no truly modular SMRs had been commissioned for commercial use.[51] In May 2020, the first prototype of a floating nuclear power plant with two 30 MWe reactors – the type KLT-40 – started operation in Pevek, Russia.[19] This concept is based on the design of nuclear icebreakers.[52] The operation of the first commercial land-based, 125 MWe demonstration reactor ACP100 (Linglong One) is due to start in China by the end of 2026.[53]

The introduction of SMRs has sparked social and institutional concern. Nuclear projects are of policy agendas, meaning centralization of SMRs. The distribution of SMRs has culminated in criticism and discussion of risk towards communities affected by lack of flexible energy.[54] As any other energy source, communities are left out and potential environmental issues are needed to be assessed given the rate of expansion of SMR.[54] In 2026, Natixis Corporate and Investment Banking reported that the SMR sector was still far from commercial reality and was entering a phase where engineering ambition must confront regulatory complexity, financing realities and industrial execution.[55]

Designs

[edit]
A nuclear fission chain is required to generate nuclear power.

SMRs are envisioned in multiple designs. Some are simplified versions of current reactors, others involve entirely new technologies.[56] All proposed SMRs use nuclear fission with designs including thermal-neutron reactors and fast-neutron reactors.

Thermal-neutron reactors

[edit]

Thermal-neutron reactors rely on a moderator (water, graphite, beryllium...) to slow neutrons and generally use 235
U
as fissile material. Most conventional operating reactors are of this type.

Fast reactors

[edit]

Fast reactors do not use moderators. Instead, they rely on highly enriched uranium (HEU) fuel to absorb fast neutrons. This usually means changing the fuel arrangement within the core, or using different fuels. E.g., 239
Pu
is more likely to absorb a fast neutron than 235
U
.

Fast reactors can also be breeder reactors. These reactors release enough neutrons to transmute non-fissionable elements into fissionable ones. A common use for a breeder reactor is to surround the core by a "blanket" of 238
U
, the most easily available isotope. Once the 238
U
undergoes a neutron absorption reaction, it becomes 239
Pu
, which can be removed from the reactor during refueling, and subsequently reprocessed and used as fuel.[57]

Technologies

[edit]
Diagram of NRC approved SMR type: Pumpless light water reactor developed by NuScale Power as mini nuclear reactor.

Coolant

[edit]

Conventional light-water reactors typically use water as a coolant and neutron moderator.[58] SMRs may use water, liquid metal, gas and molten salt as coolants.[59] Coolant type is determined based on the reactor type, reactor design, and the chosen application. Large-rated reactors primarily use light water as coolant, allowing for this cooling method to be easily applied to SMRs. Helium is often elected as a gas coolant for SMRs because it yields a high plant thermal efficiency and supplies a sufficient amount of reactor heat. Sodium, lead, and lead-bismuth eutectic (LBE) are liquid metal coolants studied for 4th generation SMRs. There was a large focus on sodium during early work on large-rated reactors which has since carried over to SMRs to be a prominent choice as a liquid metal coolant.[6] SMRs have lower cooling water requirements, which expands the number of sites where a SMR could be built, including remote areas typically incorporating mining and desalination.[4]

Thermal/electrical generation

[edit]

Some gas-cooled reactor designs could drive a gas turbine, rather than boiling water, such that thermal energy can be used directly. Heat could also be used in hydrogen production and other industrial operations,[59] such as desalination and the production of petroleum derivative (extracting oil from oil sands, making synthetic oil from coal, etc.).[60]

Load following

[edit]

SMR designs are generally expected to provide base load electrical power; some proposed designs are aimed to adjust their power output based on electricity demand.[61]

Another approach, especially for SMRs designed to provide high temperature heat, is to adopt cogeneration, maintaining consistent heat output, while diverting otherwise unneeded heat to an auxiliary use. District heating, desalination and hydrogen production have been proposed as cogeneration options.[62]

Overnight desalination requires sufficient freshwater storage capacity to deliver water at times other than when it is produced.[63] Reverse osmosis membrane and thermal evaporators are the two main techniques for seawater desalination. The membrane desalination process uses only electricity to power water pumps and is the most employed of the two methods. In the thermal process, the feed water stream is evaporated in different stages with continuous decreases in pressure between the stages. The thermal process directly uses thermal energy and avoids the conversion of thermal power into electricity. Thermal desalination is further divided into two main technologies: the multi-stage flash distillation (MSF) and the Multi-Effect Desalination (MED).[63]

Nuclear safety

[edit]
The NuScale Power Module, a pressurized-water SMR, extensively uses passive safety systems. It does not use a primary coolant pump, instead circulating water through natural convection.

A report by the German Federal Office for the Safety of Nuclear Waste Management (BASE) considering 136 different historical and current reactors and SMR concepts stated: "Overall, SMRs could potentially achieve safety advantages compared to power plants with a larger power output, as they have a lower radioactive inventory per reactor and aim for a higher safety level especially through simplifications and an increased use of passive systems. In contrast, however, various SMR concepts also favour reduced regulatory requirements, for example, with regard to the required degree of redundancy or diversity in safety systems. Some developers even demand that current requirements be waived, for example in the area of internal accident management or with reduced planning zones, or even a complete waiver of external emergency protection planning. Since the safety of a reactor plant depends on all of these factors, based on the current state of knowledge it is not possible to state, that a higher safety level is achieved by SMR concepts in principle."[45][64][39]

Negative temperature coefficients in the moderators and the fuels keep the fission reactions under control, causing the reaction to slow as temperature increases.[65] After the shutdown of a nuclear reactor, the reactor needs to be cooled continuously in order to dissipate decay heat. A loss of emergency cooling such as in the Fukushima nuclear accident and the Three Mile Island accident can result in a nuclear meltdown when the temperature in the reactor becomes too high. Since the initial decay heat is a fraction of the reactor operating power, the lower operating power of SMRs makes them much safer since less heat needs to be dissipated.[66]

Some SMR designs proposes cooling systems only based on thermoconvection – natural circulation – to eliminate cooling pumps that could break down. Convection can keep removing decay heat after reactor shutdown. However, some SMRs may need an active cooling system to back up the passive system, increasing cost.[67]

Some SMR designs feature an integral design of which the primary reactor core, steam generator and the pressurizer are integrated within the sealed reactor vessel. This integrated design allows for the reduction of a possible accident as contamination leaks could be contained. In comparison to larger reactors having numerous components outside the reactor vessel, this feature increases the safety by decreasing the risks of an uncontained accident. Some SMR designs also envisage to install the reactor and the spent-fuel storage pools underground.[68]

Radioactive waste

[edit]

New technology in nuclear waste recycling is promising safer and less expensive alternatives to today's methods. Known as partitioning and transmutation (P&T), this recycling and waste reducing process can reduce spent fuel to a smaller volume of waste with considerably less radiotoxicity.[69]

A chemical separation process is used in P&T to extract plutonium and minor actinides. A specially designed reactor is then used to perform the transmutation of  transuranic elements (neptunium, plutonium, americium and curium). Fission is finally applied to safely destroy the remaining elements. P&T is believed to improve radioactive waste management due to the expected reduction in overall waste volume P&T creates.

Even highly enriched uranium reactors, applying shorter fuel cycle technologies, are now recycling major and minor actinides without the need for high purification schemes. The method is now used by LWR fast reactors in France, India, Japan and the Russian Federation. Their waste requires no plutonium separation from the other actinides. Pyroprocessing spent fuel is currently under development for LWR fast reactors and now operational in India, the Russian Federation and the European Union. Because SMR technology is so new, P&T has yet to be used on the spent fuel these plants will create. However, it is likely to be an important recycling method for most SMRs as this technology develops.[70]

The back end of the nuclear fuel cycle for SMRs is a complex and contested issue that remains under debate.[71][49] The quantity and radiotoxicity of the radioactive waste produced by SMRs depend primarily on their design and the corresponding fuel cycle. Because SMRs encompass a broad spectrum of nuclear reactor types, there is no simple answer to this issue. SMRs may include small light water reactors of the third generation, as well as small fast neutron reactors of the fourth generation.

Some startup companies developing unconventional SMR prototypes often advocate waste reduction as a key advantage of their proposed solutions, and in some cases claim that their technology could eliminate the need for a deep geological repository to dispose of high-level and long-lived radioactive waste.[57][49] This is particularly true for companies developing fast neutron reactors of the fourth generation, such as molten salt reactors and metal-cooled reactors, including the sodium-cooled fast reactor and lead-cooled fast reactor.[72][73]

Fast breeder reactors "burn" 235
U
(0.7% of natural uranium) as fuel, but they also convert fertile materials such as 238
U
(which makes up 99.3% of natural uranium) into fissile 239
Pu
. This newly produced plutonium can then be used as nuclear fuel.[57] The traveling wave reactor proposed by TerraPower is designed to "burn" the fuel it breeds in situ, without requiring its removal from the reactor core or further reprocessing.[74]

Some SMR designs are based on the thorium fuel cycle, which is advocated by their promoters as a way to reduce the long-term radiotoxicity of waste compared to the uranium cycle.[75] However, the thorium cycle also presents significant operational challenges due to the production and use of 232
U
and the long-lived fertile 233
U
, both of which emit strong gamma rays. As a result, the presence of these radionuclides complicates the radiation shielding of fresh nuclear fuel and the long-term storage and disposal of their spent nuclear fuel.[76][77]

A 2022 study by Krall, Macfarlane and Ewing took a more critical approach, reporting that certain types of SMRs could produce more waste per unit of output power than conventional reactors—sometimes more than five times the amount of spent nuclear fuel per kilowatt, and up to thirty-five times more waste generated by neutron activation, such as activated steel and graphite.[78][79][80][49] The authors identified neutron leakage as a primary issue for SMRs, as these reactors have a higher surface-area-to-volume ratio than conventional reactors. They calculated that, in smaller reactor cores, neutron leakage rates are significantly higher because emitted neutrons are less likely to interact with fissile atoms in the fuel and induce fission. Instead, more neutrons escape the core and are absorbed by materials used in neutron reflectors and shielding (thermal and gamma shields), rendering these materials radioactive waste through neutron activation.[49] Reactor designs using liquid metal coolants—such as molten sodium, lead, or lead-bismuth eutectic (LBE)—also become radioactive and contain activated impurities.[57]

Another issue pinpointed by Krall et al. (2022) related to higher neutron leakage in SMRs is that a lower fraction of their nuclear fuel is consumed, resulting in lower burnup and leaving more fissile material in their spent nuclear fuel, thereby increasing the waste volume. To sustain chain reactions in the smaller cores of SMRs, an alternative is to use nuclear fuel with a higher enrichment of 235
U
. This could increase the risks of nuclear proliferation and may require more stringent safeguard measures to prevent it (see also IAEA safeguards).[49]

If higher concentrations of fissile material remain in the spent fuel, the critical mass needed to sustain a nuclear chain reaction is also lower. As a direct consequence, the number of spent fuel assemblies present in a waste canister must also be lower, necessitating a larger number of canisters and overpacks (containment structures) to avoid criticality accidents and guarantee nuclear criticality safety in a deep geological repository.[81] This also contributes to increased total waste volume and the number of disposal galleries needed in a geological repository.[82]

Given the potential technical and economic importance of SMRs in providing zero-carbon electrical energy for climate change mitigation, as well as the long-term and social relevance of managing and disposing of radioactive waste without imposing a negative burden on future generations, the publication of Krall et al. (2022) in the prestigious PNAS journal has attracted numerous responses. These range from criticisms regarding the quality of their data and hypotheses[83] to international debates on radioactive waste generated by SMRs and their decommissioning.[84]

In an interview with François Diaz-Maurin, the associate editor of the Bulletin of the Atomic Scientists, Lindsay Krall—the lead author of the study and a former MacArthur postdoctoral fellow at Stanford's Center for International Security and Cooperation (CISAC)—addressed questions and criticisms, including those raised by the NuScale reactor company.[85] One of Krall's main concerns in the interview was:

There's definitely a disconnect between the people working on the back end of the fuel cycle—especially with geologic repository development—and those actually designing reactors. And, there is not a lot of motivation for these reactor designers to think about the geologic disposal aspects because the NRC's new reactor design certification application does not have a chapter on geologic disposal...[85]

The high diversity of SMR reactors and their respective fuel cycles may also require more diverse waste management strategies to recycle or safely dispose of their nuclear waste.[78][49] Managing a larger number of spent fuel types will be more challenging than the current situation, where most spent fuel comes from light water reactors.

As Krall and Macfarlane stressed in a 2018 paper, some types of SMR spent fuels or coolants—such as highly reactive and corrosive uranium fluoride (UF4) from molten salt reactors or pyrophoric sodium from liquid metal-cooled fast breeders—cannot be directly disposed of in a deep geologic repository because of their chemical reactivity in underground environments (such as deep clay formations, crystalline rocks, or rock salt). To avoid exacerbating spent fuel storage and disposal issues, it will be necessary to reprocess and condition these materials in an appropriate and safe manner before final geological disposal.[86]

A study by Keto et al. (2022) at the VTT Technical Research Centre of Finland also addressed the management of spent nuclear fuel (SNF) and low- and intermediate-level waste (LILW) from the possible future deployment of SMRs in Finland. The study indicated that, per gigawatt-electric-year (GWe-year), larger masses of SNF and other high-level waste (HLW), as well as larger volumes of low-level waste (LLW), would be produced by a light water SMR compared to a large nuclear power plant.[87]

A report by the German Federal Office for the Safety of Nuclear Waste Management (BASE) found that extensive interim storage and fuel transports would still be required for SMRs. The report also concluded that a deep geological repository is unavoidable due to the presence of highly mobile, long-lived fission products that cannot be efficiently transmuted because of their low neutron cross section. This is the case with dose-dominating radionuclides such as 129
I
, 99
Tc
, and 79
Se
, which exist as soluble anions that are not sorbed onto the negatively charged minerals and are not retarded in geological media.[39]

Nuclear waste is regulated within the existing nuclear governance systems, originally designed for conventional nuclear reactors. In the United States, oversight of waste is coordinated through the US Nuclear Regulatory Framework Commission and US Department of Energy. [88] SMRs produce broadly similar categories of waste as large reactors, however differences in deployment of scale, design, and use of SMR alters the transportation needs, logistics, and containment demands.[88]

Nuclear proliferation

[edit]

Nuclear proliferation, or the use of nuclear materials to create weapons, is a concern for small modular reactors. As SMRs have lower generation capacity and are physically smaller, they are intended to be deployed in many more locations than conventional plants.[38] SMRs are expected to substantially reduce staffing levels. The combination creates physical protection and security concerns.[89][58][38]

SMRs can be designed to use unconventional fuels allowing for higher burnup and longer fuel cycles.[11] Longer refueling intervals could contribute to decrease the proliferation risks. Once the fuel has been irradiated, the mixture of fission products and fissile materials is highly radioactive and requires special handling, preventing casual theft.

Contrasting to conventional large reactors, SMRs can be adapted to be installed in a sealed underground chamber; therefore, "reducing the vulnerability of the reactor to a terrorist attack or a natural disaster".[68] New SMR designs enhance the proliferation resistance, such as those from the reactor design company Gen4. These models of SMR offer a solution capable of operating sealed underground for the life of the reactor following installation.[68][35]

Some SMR designs are designed for one-time fueling. This improves proliferation resistance by eliminating on-site nuclear fuel handling and means that the fuel can be sealed within the reactor. However, this design requires large amounts of fuel, which could make it a more attractive target. A 200 MWe 30-year core life light water SMR could contain about 2.5 tonnes of plutonium at end of life.[58]

Furthermore, many SMRs offer the ability to go periods of greater than 10 years without requiring any form of refueling therefore improving the proliferation resistance as compared to conventional large reactors of which entail refueling every 18–24 months.[68]

Light-water reactors designed to run on thorium offer increased proliferation resistance compared to the conventional uranium cycle, though molten salt reactors have a substantial risk.[90][91]

SMRs are transported from the factories without fuel, as they are fueled on the ultimate site, except some microreactors.[92] This implies an independent transport of the fuel to the site and therefore increases the risk of nuclear proliferation. At the same time, millions of tons of nuclear waste are being shipped across the United States each year and there is no history of nuclear fuel or waste theft from these deliveries.

Licensing process

[edit]

Licensing is an essential process required to guarantee the safety and security of a new nuclear installation.[93] The safety and feasibility cases of nuclear installations have to take into account all processes and elements important for the operational safety, its physical security, safeguards (risk of proliferation), the proper conditioning of radioactive waste, and the long-term safety related to the final disposal of the different types of radwaste produced, including all the waste produced during dismantling operations after decommissioning of the installation.[94][95][96] A particularly important point of attention for the backend of the nuclear fuel cycle is to avoid to producing poorly conditioned waste, or waste types without sustainable final destination or susceptible to generating unexpected reprocessing and disposal costs.

Licensing of reactor designs is commonly considered a potential barrier to SMR deployment.[97] SMR designs encompass a broad range of reactor technologies and potential use cases. Many of these designs differ substantially from existing reactors. Accordingly, the licensing pathway for SMRs is highly design-dependent.[98][99]

The majority of existing reactors are large light-water reactors (LWRs), including pressurized water reactors and boiling water reactors. Existing licensing procedures are generally based around these large LWRs. These procedures can in many cases be directly applied to SMRs, particularly light-water designs similar to existing reactors.[98][94] However, non-light-water designs, and SMRs with certain features such as autonomous operation, may encounter significantly more difficulty.[99]

In the United States, the Nuclear Regulatory Commission licenses nuclear power plants under two separate licensing pathways. The traditional process is a two-step pathway (Part 50), which involves a construction permit followed by an operating permit. A newer pathway, Part 52, involves a single, combined construction and operating license (COL), as well as an optional design certification process.[98] While both pathways are technology-neutral, their supporting guidance is primarily designed for light-water reactors. In particular, the NRC's general design criteria is primarily geared towards light-water reactors.[99] In response, the NRC and US Department of Energy developed a regulatory guide for developing design criteria for advanced reactors. The new guide was released in 2018.[100] Other parts of the licensing process such as licensing fees and emergency planning zones, while not explicitly LWR-focused, may pose issues for SMRs.[101]

The IAEA has encouraged the creation of an international guidance for SMR licensing.[98][102] A workshop in October 2009 and another in June 2010 considered the topic, followed by an US congressional hearing in May 2010.

The NRC and the United States Department of Energy are working to define SMR licensing. The challenge of facilitating the development of SMRs is to prevent a weakening of the safety regulations: the risk of lightened regulations adopted more rapidly is to lower the safety characteristics of SMRs.[103][104][105]

The US Advanced Reactor Demonstration Program was expected to help license and build two prototype SMRs during the 2020s, with up to $4 billion of government funding.[106]

In July 2024, the ADVANCE Act directed the US NRC to develop a process to license and regulate microreactor designs. The Act is intended to expedite the deployment of microreactors, among other nuclear technologies.[107]

Many SMR designs intend to use multiple identical modules at a single site, controlled from a single control room.[99] However, NRC regulations assume that at most two reactors are controlled from a single control room. This rule is based on existing large LWRs, while many SMR designs are considered safer and simpler to operate. The NRC expects, in the short term, to allow some SMRs to deviate from this rule via a regulatory exemption.[98][97] In 2020, the NRC approved a design certification for NuScale's SMR that included 12 reactor modules controlled from a single control room.[108]

Similarly, some reactors propose highly or fully autonomous control, without human operators.[96] Improved automation could significantly improve safety by reducing operational errors that lead to accidents. However, reactor designers will need to demonstrate sufficient human factors considerations for reactors that include a reduced number of human operators. Reactors that use automated controls will also need to satisfy cyber security requirements.[94]

Several designs incorporate cogeneration capabilities, or are otherwise designed to provide process heat for industry rather than electricity. Regulations based primarily on electricity generation will need to take into account the use of nuclear heat during safety analysis.[101][96]

Flexibility

[edit]

Small nuclear reactors, in comparison to conventional nuclear power plants, offer potential advantages related to the flexibility of their modular construction.[68] It would be possible to incrementally connect additional units to the grid in the event electrical load increases. Additionally, this flexibility in a standardized SMRs design revolving around modularity could allow for a faster production at a decreasing cost following the completion of the first reactor on site.[68][35]

The hypothesized flexibility and modularity of SMR is intended to allow additional power generation capability to be installed at existing power plants. A site could host several SMRs, one going off-line for refueling while the other reactors stay online as it is presently already the case for conventional larger reactors.[68]

SMRs operating in hybrid energy systems combining with renewables can develop multipurpose configurations developing system-level efficiency in sectors difficult to electrify.[109]

Hybrid system integration of SMRs without needed electrical generation foresees the direct use of thermal energy in co-generation. This includes desalination, district heating, industrial heating, industrial processes, and hydrogen production.[110]

Flexibility of SMRs enable nuclear energy use within broader energy system integration, and expanding emission reduction goals to varying degrees. [109]

SMRs have been proposed for micro-grids in remote regions; flexibility of SMR allows for base-load generation, adjusting output from a response to demand. Complimenting wind and solar power intermittently.[111] SMRs enhancing resilience in geographically isolated communities.[111]

When electrical energy is not needed, some SMR designs foresee the direct use of thermal energy, minimizing so the energy loss. This includes "desalination, industrial processes, hydrogen production, shale oil recovery, and district heating", uses for which the present conventional larger reactors are not designed.[68][62]

Economics

[edit]

A SMR factory would require substantial upfront capital. Per-unit costs would only become economical when an estimated 40–70 units are produced.[112][113]

Another potential advantage is that a future power station using SMRs can begin with a single module and expand by adding modules as demand grows. This reduces startup costs associated with conventional designs.[51] Some SMRs also have a load-following design such that they could produce less electricity when demand is low.

According to a 2014 study of electricity production in decentralized microgrids, the total cost of using SMRs for electricity generation would be significantly lower compared to the total cost of offshore wind power, solar thermal energy, biomass, and solar photovoltaic electricity generation plants.[114]

Construction costs per SMR reactor were claimed in 2016 to be less than that for a conventional nuclear plant, while exploitation costs might be higher for SMRs due to low scale economics and the higher number of reactors. SMR staff operating costs per unit output can be as much as 190% higher than the fixed operating cost of fewer large reactors.[115] Modular building is a very complex process and there is "extremely limited information about SMR modules transportation", according to a 2019 report.[40]

A production cost calculation done by the German Federal Office for the Safety of Nuclear Waste Management (BASE), taking into account economies of scale and learning effects from the nuclear industry, suggests that an average of 3,000 SMR would have to be produced before SMR production would be worthwhile. This is because the construction costs of SMRs are relatively higher than those of large nuclear power plants due to the low electrical output.[39]

In 2017, an Energy Innovation Reform Project (EIRP) study of eight companies looked at reactor designs with capacity between 47.5 MWe and 1,648 MWe.[116] The study reported average capital cost of $3,782/kW, average operating cost total of $21/MWh and levelized cost of electricity (LCOE) of $60/MWh.

In 2020, Energy Impact Center founder Bret Kugelmass claimed that thousands of SMRs could be built in parallel, "thus reducing costs associated with long borrowing times for prolonged construction schedules and reducing risk premiums currently linked to large projects".[117] GE Vernova Hitachi Nuclear Energy Executive Vice President Jon Ball agreed, saying the modular elements of SMRs would also help reduce costs associated with extended construction times.[117]

In October 2023, an academic paper published in Energy collated the basic economic data of 19 more developed SMR designs, and modeled their costs in a consistent manner. A Monte Carlo simulation showed that none were profitable or economically competitive. For the closer to market PWR SMRs the median LCOEs ranged from $218/MWh to $614/MWh (in 2020 US dollars), with lower first quartile estimates from $188/MWh to $385/MWh. The three high-temperature gas-cooled reactor designs, which needed more development time, had lower median LCOEs from $116/MWh to $137/MWh.[2]

The first SMR deployment project in the US was the Carbon Free Power Project, which planned to deploy six 77 MWe NuScale reactors, reduced from twelve in earlier plans. Estimated target electricity generation price after subsidies was $89/MWh in 2023, an increase from $58/MWh in 2021. The increased generation cost led to the decision to cancel the project in November 2023.[118] Before its cancellation, the project received a $1.355 billion cost-share award toward construction costs from the US government in 2020[119] plus an estimated $30/MWh generation subsidy from the Inflation Reduction Act of 2022.[120] Unsubsidized cost estimates at cancellation were a capital cost of $20,139/kW and generating cost of $119/MWe.[121] This raised concerns about the commercial prospects in the US of the other SMR designs.[122]

In 2024, Australian scientific research body CSIRO estimated that electricity produced in Australia by a SMR constructed from 2023 would cost roughly 2.5 times that produced by a traditional large nuclear plant, falling to about 1.6 times by 2030.[123][124]

The final investment decision in 2025 to proceed with the build of a BWRX-300 SMR in Canada was based on a forecast cost of CA$7.7 billion (US$5.6 billion), with an estimated cost of CA$13.2 billion (US$9.6 billion) for three further units. These costs include finance charges and some contingency.[125]

List of reactor designs

[edit]

Numerous reactor designs have been proposed. Notable SMR designs:

Legend
  Designed or under design  Seeking license  Licensed in one or more countries  Licensed and under construction
  Operational  Canceled  Retired

The stated power refers to the capacity of one reactor unless specified otherwise.

List of small nuclear reactor designs[126][127][ view/edit ]
Name Plant
gross
power
(MWe)
Type Producer Country Status
4S10–50SFRToshibaJapanDesign (Detailed)
Aalo Pod10 (x5)SGRAalo AtomicsUnited StatesExperimental reactor under construction at INL. Graphite moderator, water and sodium cooling.[128][129]
ABV-6E6–9PWROKBM AfrikantovRussiaDesign (Detailed)
ACP100 Linglong One125PWRChina National Nuclear CorporationChinaUnder construction[130]
ACP100S 300 PWR China National Nuclear Corporation China Feasibility study of demonstration project finished
ACR300300PWRINVAPArgentinaDesign (Detailed) [131]
Advanced Micro Reactor – AMR 3 HTGR STL Nuclear South Africa Design (Pre-conceptual)
AP300[132]300PWRWestinghouse Electric CompanyUnited StatesDesign (Detailed)
ARC-100100SFRARC NuclearCanadaDesign (Vendor Review)[133]
ANGSTREM[134]6LFROKB GidropressRussiaDesign (Conceptual)
Aurora75SFROklo Inc.United StatesFirst reactor under construction at INL.[135][136]
B&W mPower195PWRBabcock & WilcoxUnited StatesCancelled
BANDI-6060PWRKEPCOSouth KoreaDesign (Detailed)[137]
BLUE CAPSULE 50 SGR Blue Capsule Technology France Preliminary studies
BREST-OD-300[138]300LFRAtomenergopromRussiaUnder construction[139]
BWRX-300[140]300BWRGE Vernova Hitachi Nuclear EnergyUnited States/JapanFour units are licensed in Ontario as the Darlington New Nuclear Project.[141][142] At least one unit under construction.[143]
CALOGENA 30 PWR Calogena S.A. France Design (Conceptual)
CANDU SMR300PHWRCandu Energy Inc.CanadaDesign (Conceptual)
CAP200>200PWRSPICChinaDesign (Completion)
CAREM27–30PWRCNEAArgentinaSeeking ARC approval for 30 MWe test SMR. Foundational construction now halted.[144]
CMSR 110 MSR Seaborg Technologies Denmark
Copenhagen Atomics Waste Burner50MSRCopenhagen AtomicsDenmarkDesign (Conceptual)
DHR400400 (non-electric)PWRCNCCChinaDesign (Conceptual)
EAGL-1[145]240LFRFirst American NuclearUnited StatesDesign (Detailed)
ELENA[146]0.068PWRKurchatov InstituteRussiaDesign (Conceptual)
Energy Multiplier Module (EM2) 4×265 GFR General Atomics United States Pre-conceptual design complete
Energy Well[147]8.4MSRCentrum výzkumu Řež [cs] [148]CzechiaDesign (Conceptual)
eVinci[149]5HPRWestinghouse Electric CompanyUnited StatesDesign (Pre-licensing communications with the US NRC initiated.[150])
Fast Modular Reactor (FMR) 44 GFR General Atomics United States Design (Conceptual)
FLEX Reactor24MSRMoltexFLEX, Ltd.United KingdomDesign (Conceptual)
Flexblue160PWRAreva TA / DCNS groupFranceDesign (Conceptual)
Fuji MSR200MSRInternational Thorium Molten Salt Forum (ITMSF)JapanDesign (Conceptual)
GTHTR300 100~300 HTGR JAEA-led Japan Design (Conceptual)
GT-MHR285HTGROKBM AfrikantovRussiaDesign (Completed)
G4M25LFRGen4 EnergyUnited StatesCancelled (Company ceased trading)
GT-MHR50HTGRGeneral Atomics, FramatomeUnited States/FranceDesign (Conceptual)
HAPPY200200 MWtPWRSPICChinaDesign (Conceptual)
HEXANA 2 x 150 SFR Hexana France Preliminary studies
HOLOS-QUAD 10 HTGR HolosGen United States Developed detailed step-by-step installation procedure
HOLOS-MONO 10 HTGR HolosGen United States Developed detailed step-by-step installation procedure
HTGR-POLA 11.5 HTGR National Centre for Nuclear Research (NCBJ) Poland Design (Conceptual)
HTMR-10035HTGRStratek GlobalSouth AfricaDesign (Conceptual)[130]
HTR-10 2.5 HTGR Tsinghua University China Restart
HTR-PM 210 (2 reactors one turbine) HTGR China Huaneng China Operational (Two reactors. Station connected to the grid in December 2021.)[151]
HTR50 17.2 HTGR JAEA Japan Monolithic fuel element specimen irradiation test
HTTR - HTGR JAEA Japan Safety demonstration test
IMSR400195MSRTerrestrial Energy[152]CanadaDesign (Detailed) for 98 MWe (per mod), 2 module SMR
IRIS335PWRWestinghouse-ledInternationalDesign (Conceptual)
i-SMR 170 PWR Innovative Small Modular Reactor Development Agency (KHNP and KAERI) South Korea Design (Conceptual)
JIMMY HTGR JIMMY ENERGY France Design (Basic)
Kaleidos1HTGRRadiantUnited StatesDesign (Detailed), test reactor under construction.[153]
KLT-40S Akademik Lomonosov70PWROKBM AfrikantovRussiaOperational May 2020[19] (floating plant)
KP-FHR140FHRKairos PowerUnited StatesDesign (Detailed), two test reactors under construction.
LFR-AS-200 200 LFR NewCleo Italy/France Design (Conceptual)
Lithium Fluoride Thorium Reactor 250 MSR Flibe Energy United States Design (Conceptual)
MARVEL Research Microreactor LMR Idaho National Laboratory United States Demonstration test bed[154]
MMR5-15HTGRUltra Safe Nuclear Corporation [wd] purchased by NANO Nuclear EnergyUnited States/CanadaCompany filed for Chapter 11 bankruptcy.[155] Had been seeking licensing.[156] Design acquired by Nano Nuclear Energy, who renamed the design KRONOS MMR.[157][158] Applied for an NRC construction permit to build one unit at the University of Illinois Urbana-Champaign.[159]
MHR-10025–87HTGROKBM AfrikantovRussiaDesign (Conceptual)
MHR-T[c]205.5 (x4)HTGROKBM AfrikantovRussiaDesign (Conceptual)
MoveluX 3~4 HPR Toshiba Energy Systems & Solutions Japan
MRX30–100PWRJAERIJapanDesign (Conceptual)
NOVA CoreHTGRValar AtomicsUnited StatesDesign (Working prototype). Design achieved cold criticality state at LANL on 18 November 2025.[160][161]
NP-300100–300PWRAreva TAFranceDesign (Conceptual)
NuScale Power Module 77 PWR NuScale Power United States Received NRC Standard Design Certification in 2025.[162] 50 MW version certified in 2023.[163]
NuwardunknownPWRconsortiumFranceDesign (Conceptual). In July 2024, existing design discontinued for a simpler redesign.[164][165]
OPEN100100PWREnergy Impact CenterUnited StatesDesign (Conceptual)[166]
PBMR165HTGREskomSouth AfricaCancelled - demonstration plant postponed indefinitely[167]
PeLUIt-40 10 HTGR BRIN, ITB Indonesia Design (Conceptual)
PWR-20 20 PWR Last Energy United States Design (Conceptual)[168]
Pylon D1 HTGR Ultra Safe Nuclear Corporation United States Design (Pre-conceptual)
RITM-200N 55 PWR OKBM Afrikantov Russia Under construction[169][170]
RITM-200S 106 PWR OKBM Afrikantov Russia Under construction[171]
Rolls-Royce SMR470PWRRolls-RoyceUnited KingdomSeeking UK GDA licensing in April 2022[172] In final stage 3 of assessment[173]
Stable Salt Reactor Wasteburner 300~900 MSR (Static Fuelled) Moltex Energy Canada, United Kingdom
SEALER[174][175]55LFRBlykalla [sv]SwedenDesign
SHELF-M 10 PWR NIKIET Russia Design[176][177][178]
SMART100110PWRKAERISouth KoreaLicensed in Korea (standard design approval)[179][180]
SMR-160160PWRHoltec InternationalUnited StatesUS NRC pre-application suspended in favor of SMR-300 design[181]
SMR-300300PWRHoltec InternationalUnited StatesApplied for an NRC construction permit for two units at Palisades.[182] Seeking UK Generic Design Assessment.[183]
SVBR-100 [cs][184][185]100LFROKB GidropressRussiaDesign (Detailed)
SSR-W300–1000MSRMoltex Energy[186]CanadaDesign (Phase 1, vendor design review).[187]
STAR 10 PWR STAR ENERGY SA Switzerland Design (Detailed)
Stellarium 110 MSR Stellaria France Pre-conceptual design
S-PRISM311SFRGE Vernova Hitachi Nuclear EnergyUnited States/JapanDesign (Detailed)
TEPLATOR50 (non-electric)PHWRUniversity of West BohemiaCzech RepublicDesign (Conceptual)[citation needed]
Natrium 345 SFR TerraPower United States Under construction as Kemmerer Unit 1.[188]
Thorcon TMSR-500500MSRThorCon[189]IndonesiaDesign (Conceptual)
THORIZON 100 Modular core fast-spectrum reactor with chloride salt THORIZON Netherlands Pre-conceptual design
UNITHERM 10 PWR NIKIET Russia Design
U-Battery4HTGRU-Battery consortium[d]United KingdomCancelled. Design archived.[190]
VBER-300325PWROKBM AfrikantovRussiaDesign
VK-300 [de]250BWRAtomstroyexportRussiaDesign (Detailed)
VVER-300300BWROKB GidropressRussiaDesign (Conceptual)
Westinghouse SMR225PWRWestinghouse Electric CompanyUnited StatesCancelled. Preliminary design completed.[191]
XAMR 40 MSR NAAREA France Design (Conceptual)
Xe-10080HTGRX-energy[192]United StatesApplied for an NRC construction permit to build a four-module plant with Dow Chemical Company.[193]
Updated as of 2022. Some reactors are not included in IAEA Report.[194][195][126] Not all IAEA reactors are listed in this table. Some were added (anno 2023) that were not yet listed in the now dated IAEA report. However, new manufacturers are being added as news reports and NRC information becomes available.

Siting and infrastructure

[edit]

SMRs are expected to be more flexible in their deployment than large power plants. The use of inherent safety features and smaller emergency planning zones is expected to allow them to be deployed on industrial or military sites as well as closer to urban areas. They can also be deployed in power grids that are too small to accommodate large reactors.[4] Electricity needs in remote locations are usually small and variable, making a smaller plant ideal.[36]:8

In rural areas, limited grid coverage limits the deployment of large power plants. According to the IAEA, a single power plant should not represent more than 10% of the total grid capacity. Their smaller physical footprint and smaller generating capacity makes SMRs better suited for small power grids.[196]

Proposed sites

[edit]

Argentina

[edit]

In February 2014, the CAREM SMR project started in Argentina with the civil engineering construction of the containment building of a prototype reactor. The CAREM acronym means Central ARgentina de Elementos Modulares. The National Atomic Energy Commission (Spanish: Comisión Nacional de Energía Atómica, CNEA), the Argentine government agency in charge of nuclear energy research and development and Nucleoeléctrica Argentina [es], the national nuclear energy company, are cooperating to achieve the realization of the project.[197]

CAREM-25 is a prototype of 25 MWe, the first nuclear power plant completely designed and developed in Argentina.[197] The project was suspended several times before being resumed. In October 2022, CNEA expected that the civil construction works would be finished by 2024. If construction continues according to plan, the first criticality of CAREM-25 is foreseen by the end of 2027.[197]

Canada

[edit]

In 2018, the Canadian province of New Brunswick announced it would invest $10 million for a demonstration project at the Point Lepreau Nuclear Generating Station.[198] It was later announced that SMR proponents Advanced Reactor Concepts[199] and Moltex[200] would open offices there. One unit is scheduled for construction at Point Lepreau Nuclear Generating Station, Canada, in July 2018. Both Moltex and ARC Nuclear are vying for the contract.[201]

On 1 December 2019, the Premiers of Ontario, New Brunswick and Saskatchewan signed a memorandum of understanding (MoU) [202] "committing to collaborate on the development and deployment of innovative, versatile and scalable nuclear reactors, known as Small Modular Reactors (SMRs)."[203] They were joined by Alberta in August 2020.[204] Continued support from citizens and government officials has led to the execution of a selected SMR at the Canadian Nuclear Laboratory.[6]

In 2021, Ontario Power Generation announced they planned to build a BWRX-300 SMR at their Darlington site to be completed by 2028. The Canadian Nuclear Safety Commission issued the construction license in 2025, and construction started soon after.[205] As of 2026, the first unit is expected to come online by 2030.[206]

On 11 August 2022, Invest Alberta, the Government of Alberta's crown corporation signed a MoU with Terrestrial Energy regarding IMSR in Western Canada through an interprovincial MoU it joined earlier.[207]

China

[edit]

In July 2019, China National Nuclear Corporation (CNNC) announced it would build an ACP100 SMR on the north-west side of the existing Changjiang Nuclear Power Plant at Changjiang, in the Hainan province by the end of the year.[208] On 7 June 2021, the demonstration project, named the Linglong One, was approved by China's National Development and Reform Commission.[209] In July, CNNC started construction,[210] and in October 2021, the containment vessel bottom of the first of two units was installed. It is the world's first commercial land-based SMR prototype.[53]

In August 2023, the core module was installed. The core module includes an integrated pressure vessel, steam generator, primary pump receiver. The reactor's planned capacity is 125 MWe.[211]

France

[edit]

At the beginning of 2023, Électricité de France (EDF) created a new subsidiary to develop and construct a new SMR named Nuward. It was a 340 MWe design with two independent light water reactors of 170 MWe. The twin reactors were sheltered in a single containment building sharing most of their equipment.[212] In August 2023, EDF submitted a safety case for Nuward to the autorité de sûreté nucléaire (ASN), the French safety authority.[213]

In July 2024, EDF announced it was discontinuing the existing design process for Nuward, and will work on an SMR design based on existing rather than innovative technologies, following discussions with prospective SMR customers.[164][165] In January 2025, EDF announced that the new Nuward conceptual design would be completed by mid-2026 to come to market in the 2030s, with an output of about 400 MWe and usable heat output of 100 MWt.[214]

Poland

[edit]

Polish chemical company Synthos declared plans to deploy a Hitachi BWRX-300 reactor (300 MW) in Poland by 2030.[215] A feasibility study was completed in December 2020 and the licensing process started with the Polish National Atomic Energy Agency.[216]

In February 2022, NuScale Power and the large mining conglomerate KGHM Polska Miedź announced signing of contract to construct a first operational reactor in Poland by 2029.[217]

Romania

[edit]

In 2019, the state-owned Romanian nuclear energy company Nuclearelectrica and NuScale Power signed a memorandum of understanding to develop NuScale SMRs in Romania. In 2022, the project was announced to be on the site of a former coal power plant, located near the village of Doicești, Dâmbovița county, 90 km North of Bucharest. The project would comprise 6 NuScale SMRs, each producing 77 MWe for a total of 462 MWe, and would be the first of its kind in Europe. The power plant would produce enough electricity for 46 thousand households and would help to avoid the release of 4 million tons of CO2 per year.[218][219] In June 2022, US President Joe Biden announced $14 million in funding for the project.[220] In 2026, Nuclearelectrica voted to approve the final investment decision on the project, with a targeted completion date of 2033. The project was expected to cost $6-7 billion.[221][222]

Russia

[edit]

Russia has started to deploy on its arctic coast small nuclear reactors embarked on board icebreakers. In May 2020, the first prototype of a floating nuclear power plant, Akademik Lomonosov-1 started operation in Pevek, Russia.[19] The plant contains two 30 MWe KLT-40S pressurized-water reactors and provides both heat and electricity.[223] This concept is based on the design of nuclear icebreakers, and is considered the first operational SMR.[52][223][224]

United Kingdom

[edit]

In 2016, it was reported that the UK Government was assessing Welsh SMR sites – including the former Trawsfynydd nuclear power station – and on the site of former nuclear or coal-fired power stations in Northern England. Existing nuclear sites including Bradwell, Hartlepool, Heysham, Oldbury, Sizewell, Sellafield, and Wylfa were stated to be possibilities.[225] The target cost for a 470 MWe Rolls-Royce SMR unit is £1.8 billion for the fifth unit built.[226][227] In 2020, it was reported that Rolls-Royce had plans to construct up to 16 SMRs in the UK. In 2019, the company received £18 million to begin designing the modular system.[228] An additional £210 million was awarded to Rolls-Royce by the British government in 2021, complemented by a £195 million contribution from private firms.[229] In November 2022, Rolls-Royce announced that the sites at Trawsfynydd, Wylfa, Sellafield and Oldbury would be prioritised for assessment as potential locations for multiple SMRs.[230]

The British government launched Great British Nuclear in July 2023 to administer a competition to create SMRs, and will co-fund any viable project.[231]

United States

[edit]

The Galena Nuclear Power Plant in Galena, Alaska, was a proposed micro nuclear reactor installation. It would have contained a Toshiba 4S reactor situated underground.[232] As of 2011, the project had been scrapped after the development timeline was estimated to be 15 years.[233]

The Utah Associated Municipal Power Systems (UAMPS) had partnered with Energy Northwest to explore siting a NuScale Power reactor in Idaho.[234][118] Known as the Carbon Free Power Project, the project was canceled in November 2023 for cost reasons.[118] The cost of the project had risen from $5 billion to $9 billion, causing customers to pull out of the project.[122][17] NuScale said in January 2023 the target price for power from the plant was $89 per megawatt hour, up 53% from the previous estimate of $58 per MWh, raising concerns about customers' willingness to pay.[235] Prior to its cancellation, the project had been predicted by the US Department of Energy to be the first SMR in the United States.[236] In 2023, NuScale, which developed a light-water SMR, received the first Standard Design Certification issued by the NRC for an SMR.[237]

In 2024, the US had nearly 4 gigawatts in announced SMR projects in addition to almost 3 GW in early development or pre-development stages, according to Utility Dive.[238]

The Tennessee Valley Authority (TVA) was authorized to receive an Early Site Permit (ESP) by the Nuclear Regulatory Commission for siting an SMR at its Clinch River Nuclear Site in Tennessee in December 2019.[239] This ESP is valid for 20 years, and addresses site safety, environmental protection and emergency preparedness. The ESP is applicable for any light-water reactor SMR design under development in the United States.[240] In April 2025, the TVA applied for a construction permit for a BWRX-300 SMR. On July 1, 2026, the NRC recommended the permit be issued following a favorable safety determination.[241][242]

In 2025, the TVA contracted Entra1 Energy to manage the building of 6 GW of NuScale SMRs on TVA's other sites.[243][better source needed] In December 2025, the Department of Energy selected the TVA and Holtec International to receive grants of $400 million each to support early deployment of advanced light-water SMRs, with an SMR defined as having output of between 50 and 350 MWe.[244]

Kairos Power, which is developing a fluoride salt-cooled high-temperature SMR, received a construction permit from the NRC for their Hermes test reactor in Oak Ridge, Tennessee, in 2023, and construction began in 2025.[245] In October 2024, Google agreed to commission multiple small modular reactors from Kairos to power its AI data centers, with the first to be operational in 2030.[246][247][248] Kairos received a construction permit in November 2024 to build a two-reactor plant, Hermes 2, to supply 50 MW of electricity to Google and the TVA grid. The company broke ground on the site in April 2026.[249][250]

Another developer, Oklo, has developed a sodium-cooled SMR, the Aurora Powerhouse. In 2025, they were selected under the DOE's Reactor Pilot Program to build the first unit at Idaho National Laboratory. The company broke ground on the reactor, Aurora-INL, in September 2025.[251]

In 2026, Antares Nuclear announced that their Mark-0 test reactor had achieved zero-power (cold) criticality, claiming to be the first privately developed, non-light-water reactor to do so.[252] Soon after, Valar Atomics announced that their 5 MW Ward-250 test reactor had reached cold criticality. In July 2026, Deployable Energy, another SMR developer, announced their Unity test reactor had also gone cold critical. The reactors were reported as having achieved Donald Trump's goal of three reactors achieving criticality by July 4th.[253][254]

Notes

[edit]
  1. No definitive range for SMR power levels exists, but 10 MW to 300 MW is generally accepted.[6]
  2. "The 10-year lag time in the design, engineering, licensing, and construction of new plants created a situation in which utilities were ordering (and vendors were selling) plants that were sixfold larger than current operational experience. This compares to a more traditional rule of thumb that recommends a twofold scale-up for complex engineered systems. The more aggressive approach employed by the nuclear industry required a significant leap of faith, which unfortunately did not play out well."[29]
  3. Multi-unit complex based on the GT-MHR reactor design
  4. Urenco Group in collaboration with Jacobs and Kinectrics

References

[edit]
  1. 1 2 3 Hussein, Esam M. A. (2020). "Emerging small modular nuclear power reactors: A critical review". Physics Open. 5 100038. Bibcode:2020PhyO....500038H. doi:10.1016/j.physo.2020.100038.
  2. 1 2 3 4 Steigerwald, Björn; Weibezahn, Jens; Slowik, Martin; von Hirschhausen, Christian (15 October 2023). "Uncertainties in estimating production costs of future nuclear technologies: A model-based analysis of small modular reactors". Energy. 281 (15) 128204. Elsevier. Bibcode:2023Ene...28128204S. doi:10.1016/j.energy.2023.128204.
  3. 1 2 3 4 Fabian, John (12 January 2024). "Scratching the surface of SMR history: What's in a name?". Nuclear Newswire. American Nuclear Society. Retrieved 27 March 2026.
  4. 1 2 3 4 5 6 "Small Modular Reactors". World Nuclear Association. 24 March 2026. Retrieved 27 March 2026.
  5. Berniolles, Jean-Marie (29 November 2019). "De-mystifying small modular reactors". Sustainability Times. Retrieved 16 April 2020.
  6. 1 2 3 4 Daniel T. Ingersoll and Mario D. Carelli, ed. (2020). Handbook of Small Modular Nuclear Reactors (2nd ed.). Woodhead Publishing. doi:10.1016/C2019-0-00070-2. ISBN 978-0-12-823917-9. OCLC 1222802880.
  7. Reitsma, F.; Subki, M. H.; Luque-Gutierrez, J. C.; Bouchet, S. (2020). "Advances in Small Modular Reactor Technology Developments" (PDF) (2020 ed.). Retrieved 19 April 2026.
  8. 1 2 3 4 5 Ingersoll, Daniel T. (2016). "Chapter 3: The rise of current small modular reactors (2000–2015)". Small Modular Reactors: Nuclear Power Fad Or Future?. doi:10.1016/B978-0-08-100252-0.00003-3. ISBN 978-0-08-100252-0.
  9. "The Galena Project Technical Publications", p. 22, Burns & Roe
  10. 1 2 "Small Modular Reactors: Nuclear Energy Market Potential for Near-term Deployment" (PDF). OECD-NEA.org. 2016.
  11. 1 2 Furfari, Samuele (31 October 2019). "Squaring the energy circle with SMRs". Sustainability Times. Retrieved 16 April 2020.
  12. Penn, Ivan; Weise, Karen (16 October 2024). "Hungry for Energy, Amazon, Google and Microsoft Turn to Nuclear Power". The New York Times. Retrieved 19 April 2026.
  13. Patel, Sonal C. (3 March 2025). "The SMR Gamble: Betting on Nuclear to Fuel the Data Center Boom". POWER. Retrieved 19 April 2026.
  14. American Nuclear Society (13 February 2026). "Throwback Thursday: SMRs". Axios. Retrieved 28 March 2026.
  15. Trikouros, Nicholas (2012). "A Perspective on Small Reactor Licensing and Implementation". Nuclear Technology. 178 (2): 233–239. Bibcode:2012NucTe.178..233T. doi:10.13182/NT12-A13562. Although discussions of small reactors commonly entail the use of the acronym 'SMR,' the exact meaning of the acronym appears to be somewhat controversial.
  16. "Advanced Reactors | Nuclear Regulatory Commission". United States Nuclear Regulatory Commission. 10 February 2026. Retrieved 27 March 2026.
  17. 1 2 Kimball, Spencer; Cortés, Gabriel (7 September 2024). "Small nuclear reactors could power the future — the challenge is building the first one in the U.S." CNBC. Retrieved 7 September 2024.
  18. "Small Modular Reactor (SMR) Global Project Tracker - World Nuclear Association". world-nuclear.org. Retrieved 11 May 2026.
  19. 1 2 3 4 "Power Reactor Information System (PRIS), International Atomic Energy Agency - Akademik Lomonosov-1 - Reactor Details". pris.iaea.org. Retrieved 12 September 2024.
  20. Perera, Judith (18 January 2023). "IAEA ups support for SMRs". Nuclear Engineering International. Retrieved 24 January 2023.
  21. "There are now 127 different SMR designs, finds NEA report". World Nuclear News. 23 July 2025. Retrieved 10 August 2025.
  22. 1 2 Schlegel, Joshua P.; Bhowmik, P.K. (2023). "Chapter 14 – Small modular reactors". Nuclear Power Reactor Designs: From History to Advances. doi:10.1016/C2021-0-00402-8. ISBN 978-0-323-99880-2.
  23. 1 2 3 "Nuclear-Powered Ships: Nuclear Propulsion Systems". World Nuclear Association. 4 February 2025.
  24. "NASA's organizational and management challenges in the wake of the Columbia disaster". www.congress.gov. 29 October 2003. our nuclear‑powered ships ... have steamed ... without a reactor accident ... with no measurable negative impact on the environment or human health
  25. 1 2 Weinberg, Alvin M. (November 1952). "Wanted: Smaller and More Reactors". Editorial. Nucleonics. Vol. 10, no. 11. The McGraw-Hill Companies. p. 32.
  26. Murray, Raymond L. (1954). Introduction to Nuclear Engineering. Englewood Cliffs, NJ: Prentice-Hall. p. 376. A new point of view that at this writing appears to be gaining considerable favor is that the demand for the multi-million dollar reactors that can produce power at a price of around 5 mills/kWhr is small, and that small "power package" reactors should be developed.
  27. Swift, Thomas P. (21 March 1954). "Wanted: A Contractor to Build A Portable Atomic Power Plant". The New York Times. Retrieved 16 April 2026.
  28. Barnett, James W. (1 August 1961). Construction of the Army nuclear power plant PM-2A at Camp Century, Greenland: Final report (Report). Dept. of the Army, Office of the Chief of Engineers, Nuclear Power Division.
  29. 1 2 3 4 5 6 7 Ingersoll, Daniel T. (2016). "Chapter 2: A brief history of small nuclear power (1950–2000)". Small Modular Reactors: Nuclear Power Fad Or Future?. doi:10.1016/B978-0-08-100252-0.00003-3. ISBN 978-0-08-100252-0.
  30. Kugeler, Kurt; Zhang, Zuoyi (2019). Modular High-temperature Gas-cooled Reactor Power Plant. Heidelberg: Springer Berlin. p. 637. doi:10.1007/978-3-662-57712-7. ISBN 978-3-662-57712-7.
  31. Aydogan, Fatih (2023). "Small Modular Reactors (SMRs)". Handbook of Generation IV Nuclear Reactors (2nd ed.). Woodhead Publishing. doi:10.1016/C2019-0-01219-8. ISBN 978-0-12-820588-4. The historical development of SMRs started with integrated reactor designs, such as SIR and PIUS.
  32. Triplett, Brian S.; Loewen, Eric P.; Dooies, Brett J. (2010). "PRISM: A Competitive Small Modular Sodium-Cooled Reactor" (PDF). Nuclear Technology. 178 (2): 186–200. doi:10.13182/NT178-186. Retrieved 26 April 2026.
  33. Hylko, James M. (1 August 2011). "PRISM: A Promising Near-Term Reactor Option". POWER. Retrieved 24 April 2026.
  34. Office of Nuclear Reactor Regulation (1994). Preapplication Safety Evaluation Report for the Power Reactor Innovative Small Module (PRISM) Liquid-Metal Reactor (PDF). Nuclear Regulatory Commission (Technical report). p. xxiii. NUREG-1368. Retrieved 11 May 2026. PRISM is a small, modular, pool-type, liquid-metal (sodium)-cooled reactor producing 471 MWt power. Three reactor modules constitute a power block, and up to three power blocks can be combined for a 1,395-MWe station. The reactor modules would be a standard design that would be built in a factory and shipped by rail to a site.
  35. 1 2 3 Ingersoll, D.T. (2009). "Deliberately small reactors and the second nuclear era". Progress in Nuclear Energy. 51 (4–5): 589–603. Bibcode:2009PNuE...51..589I. doi:10.1016/j.pnucene.2009.01.003. ISSN 0149-1970.
  36. 1 2 Office of Nuclear Energy, Science, and Technology (May 2001). Report to Congress on Small Modular Nuclear Reactors (PDF) (Report). United States Department of Energy. Archived from the original (PDF) on 16 July 2011. Retrieved 11 May 2026.
  37. Chu, Steven (23 March 2010). "America's New Nuclear Option - Small modular reactors will expand the ways we use atomic power". Wall Street Journal. Archived from the original on 5 July 2014 via U.S. Department of Energy.
  38. 1 2 3 Trakimavičius, Lukas (November 2020). "Is Small Really Beautiful? The Future Role of Small Modular Nuclear Reactors (SMRs) In The Military" (PDF). NATO Energy Security Centre of Excellence. Archived from the original (PDF) on 31 July 2022. Retrieved 5 December 2020.
  39. 1 2 3 4 5 6 "Small Modular Reactors (SMR)". Bundesamt für die Sicherheit der nuklearen Entsorgung (in German). 15 January 2023. Retrieved 12 December 2023.
  40. 1 2 Mignacca, Benito; Hasan Alawneh, Ahmad; Locatelli, Giorgio (27 June 2019). Transportation of small modular reactor modules: What do the experts say?. 27th International Conference on Nuclear Engineering.
  41. Boarin, Sara; Ricotti, Marco E. (5 August 2014). "An Evaluation of SMR Economic Attractiveness". Science and Technology of Nuclear Installations. 2014 e803698. doi:10.1155/2014/803698. hdl:11311/839526. ISSN 1687-6075.
  42. "Small Modular Reactors explained - European Commission". energy.ec.europa.eu. Retrieved 11 February 2024.
  43. "Nuclear power can play a major role in enabling secure transitions to low emissions energy systems". IEA. 30 June 2022. Retrieved 13 December 2023.
  44. Vaya Soler, Antonio (2024). Chapter 23 – The future of nuclear energy and small modular reactors. In: Living with Climate Change. Elsevier. pp. 465–512. doi:10.1016/B978-0-443-18515-1.00012-5. ISBN 978-0-443-18515-1. Retrieved 13 December 2023.
  45. 1 2 Öko-Institut (10 March 2021). "Sicherheitstechnische Analyse und Risikobewertung einer Anwendung von SMR-Konzepten (Small Modular Reactors)" [Safety analysis and risk assessment of the application of SMR concepts]. Bundesamt für die Sicherheit der nuklearen Entsorgung (in German). Retrieved 13 December 2023.
  46. ""Accelerating SMRs for Net Zero" initiative launched at COP28". Nuclear Energy Agency (NEA). 5 December 2023. Retrieved 13 December 2023.
  47. "Accelerating SMRs for Net Zero". Nuclear Energy Agency (NEA). 5 December 2023. Retrieved 13 December 2023.
  48. Nuclear Energy Agency (NEA) (November 2023). "Small Modular Reactors (SMRs) for Net Zero" (PDF). Retrieved 13 December 2023.
  49. 1 2 3 4 5 6 7 Krall, Lindsay M.; Macfarlane, Allison M.; Ewing, Rodney C. (7 June 2022). "Nuclear waste from small modular reactors". Proceedings of the National Academy of Sciences. 119 (23) e2111833119. Bibcode:2022PNAS..11911833K. doi:10.1073/pnas.2111833119. ISSN 0027-8424. PMC 9191363. PMID 35639689.
  50. 1 2 Chmielewska-Śmietanko, Dagmara; Sartowska, Bożena (5 December 2025). "Emerging Issues of Corrosion in Nuclear Power Plants: The Case of Small Modular Reactors". Energies. 18 (24): 6376. doi:10.3390/en18246376. ISSN 1996-1073.
  51. 1 2 Mignacca, Benito; Locatelli, Giorgio (1 November 2019). "Economics and finance of Small Modular Reactors: A systematic review and research agenda". Renewable and Sustainable Energy Reviews. 118 109519. Bibcode:2020RSERv.11809519M. doi:10.1016/j.rser.2019.109519. hdl:11311/1204915. ISSN 1364-0321.
  52. 1 2 "Russia connects floating plant to grid". World Nuclear News. 19 December 2019. Alexey Likhachov, director general of state nuclear corporation Rosatom, said Akademik Lomonosov had thus becomes the world's first nuclear power plant based on SMR technology to generate electricity.
  53. 1 2 Installation of containment starts at Chinese SMR. WNN, 25 October 2021
  54. 1 2 McCaluey, Darren (December 2025). "An energy justice critique of small modular reactors in emerging nuclear transitions". Energy Research & Social Science. 130 104457. Bibcode:2025ERSS..13004457M. doi:10.1016/j.erss.2025.104457.
  55. Benoist, Eric; Boutros, Rita (2 June 2026). "Small Modular (Nuclear) Reactors: is the dream still alive?". Natixis Corporate and Investment Banking. Paris. Retrieved 11 June 2026.
  56. INEA, NEA, IEA. "Innovative Nuclear Reactor Development: Opportunities for International Co-operation", OECD Nuclear Energy Agency
  57. 1 2 3 4 "Fast Neutron Reactors". World Nuclear Association. 31 March 2026. Retrieved 11 July 2026.
  58. 1 2 3 Glaser, Alexander (5 November 2014), Small Modular Reactors - Technology and Deployment Choices (presentation), NRC
  59. 1 2 "Nuclear Power Reactors". World Nuclear Association. 8 July 2026. Retrieved 11 July 2026.
  60. "Nuclear Process Heat for Industry". World Nuclear Association. 2 May 2024. Retrieved 11 July 2026.
  61. Locatelli, Giorgio; Boarin, Sara; Fiordaliso, Andrea; Ricotti, Marco E. (1 April 2018). "Load following of Small Modular Reactors (SMR) by cogeneration of hydrogen: A techno-economic analysis". Energy. 148: 494–505. Bibcode:2018Ene...148..494L. doi:10.1016/j.energy.2018.01.041. hdl:11311/1046552. ISSN 0360-5442.
  62. 1 2 Locatelli, Giorgio; Fiordaliso, Andrea; Boarin, Sara; Ricotti, Marco E. (1 May 2017). "Cogeneration: An option to facilitate load following in Small Modular Reactors" (PDF). Progress in Nuclear Energy. 97: 153–161. Bibcode:2017PNuE...97..153L. doi:10.1016/j.pnucene.2016.12.012. hdl:11311/1046551. ISSN 0149-1970.
  63. 1 2 Locatelli, Giorgio; Boarin, Sara; Pellegrino, Francesco; Ricotti, Marco E. (1 February 2015). "Load following with Small Modular Reactors (SMR): A real options analysis" (PDF). Energy. 80: 41–54. Bibcode:2015Ene....80...41L. doi:10.1016/j.energy.2014.11.040. hdl:11311/881391. ISSN 0360-5442.
  64. Für die Zukunft zu spät. Süddeutsche Zeitung, 9. März 2021
  65. DOE-HDBK-1019 1993, pp. 23–29
  66. Laufs. Reaktortechnik für Hochleistungskernkraftwerke [Reactor Technology for High Power Nuclear Power Plants] (in German). Springer.
  67. "Small Modular Reactors: Safety, Security and Cost Concerns (2013)". Union of Concerned Scientists. Retrieved 2 April 2019.
  68. 1 2 3 4 5 6 7 8 Cunningham, Nick (2012). Small modular reactors: a possible path forward for nuclear power. American Security Project. OCLC 813390081.
  69. Kooyman, T. (2021). "Current state of partitioning and transmutation studies for advanced nuclear fuel cycles". Annals of Nuclear Energy. 157 108239. Bibcode:2021AnNuE.15708239K. doi:10.1016/j.anucene.2021.108239. Retrieved 3 May 2026.
  70. Bychkov, Alexander V. "THE FUTURE: INNOVATIVE TECHNOLOGIES FOR RADIOACTIVE WASTE PROCESSING AND DISPOSAL" (PDF). iaea.org. IAEA. Retrieved 27 August 2025.
  71. Considerations for the Back End of the Fuel Cycle of Small Modular Reactors (Report). IAEA-TECDOC-2040. Vienna: International Atomic Energy Agency. 2023. Retrieved 12 June 2025.
  72. Advanced Reactors and Fuel Cycles (Report). OECD Nuclear Energy Agency. 2021. Retrieved 12 June 2025.
  73. Status of Small Reactor Designs Without On-Site Refuelling (Report). IAEA Nuclear Energy Series No. NP-T-1.14. Vienna: International Atomic Energy Agency. 2020. Retrieved 12 June 2025.
  74. Wald, M. "TR10: Traveling Wave Reactor" Archived 11 October 2011 at the Wayback Machine, Technology Review
  75. "5.3". The Use of Thorium in Nuclear Power Reactors (PDF) (Report). WASH-1097. U.S. Atomic Energy Commission. May 1969.
  76. "Thorium". World Nuclear Association. May 2024. Retrieved 12 June 2025.
  77. Introduction of Thorium in the Nuclear Fuel Cycle: Short- to Long-term Considerations (PDF) (Report). OECD Nuclear Energy Agency. 2015. Retrieved 12 June 2025.
  78. 1 2 Barber, Gregory. "Smaller reactors may still have a big nuclear waste problem". Wired. ISSN 1059-1028. Retrieved 3 August 2022.
  79. Vaughan, Adam (30 May 2022). "Mini nuclear power stations may produce more waste than large ones". New Scientist. Retrieved 3 December 2023.
  80. Stanford University (30 May 2022). "Small modular reactors produce high levels of nuclear waste". Stanford News. Retrieved 4 December 2023.
  81. Radin, Alex (1 November 1989). Monitored Retrieval Storage Review. Washington, DC: Monitored Retrieval Storage Review Commission. p. K-3. A secondary external enclosure for packaged spent fuel […].
  82. "The Back End of the Nuclear Fuel Cycle". World Nuclear Association. May 2024. Retrieved 12 June 2025.
  83. "Stanford's questionable study on spent nuclear fuel for SMRs". Neutron Bytes. 31 May 2022. Retrieved 3 December 2023.
  84. "Management of spent fuel, radioactive waste and decommissioning in SMRs or advanced reactor technologies. 7-10 November 2022, Ottawa, Canada. Workshop programme" (PDF). Retrieved 3 December 2023.
  85. 1 2 Diaz-Maurin, François (17 June 2022). "Interview: Small modular reactors get a reality check about their waste". Bulletin of the Atomic Scientists. Retrieved 3 December 2023.
  86. Krall, Lindsay M.; Macfarlane, Allison M. (31 August 2018). "Burning waste or playing with fire? Waste management considerations for non-traditional reactors". Bulletin of the Atomic Scientists. 74 (5). Routledge: 326–334. Bibcode:2018BuAtS..74e.326K. doi:10.1080/00963402.2018.1507791. S2CID 149901270. Retrieved 3 December 2023.
  87. Keto, Paula; Juutilainen, Pauli; Schatz, Timothy; Naumer, Sami; Häkkinen, Silja (28 February 2022). Waste Management of Small Modular Nuclear Reactors in Finland (Report). VTT Technical Research Centre of Finland. Retrieved 15 December 2023.
  88. 1 2 Park, Sulgiye; Ewing, Rodney C. (13 November 2023). "US Legal and Regulatory Framework for Nuclear Waste from Present and Future Reactors and Their Fuel Cycles". Annual Review of Environment and Resources. 48: 713–736. doi:10.1146/annurev-environ-112621-064435.
  89. Greneche, Dominique (18 June 2010), Proliferation issues related to the deployment of Small & Medium Size reactors (SMRs) (PDF), Areva, archived from the original (presentation) on 24 March 2017
  90. Kang, J.; Von Hippel, F. N. (2001). "U-232 and the proliferation-resistance of U-233 in spent fuel". Science & Global Security. 9 (1): 1–32. Bibcode:2001S&GS....9....1K. doi:10.1080/08929880108426485. S2CID 8033110. "Kang & Von Hippel: U-232 etc..." (PDF). Archived from the original (PDF) on 3 December 2014. Retrieved 2 March 2015.
  91. Ashley, Stephen (2012). "Thorium fuel has risks". Nature. 492 (7427): 31–33. Bibcode:2012Natur.492...31A. doi:10.1038/492031a. PMID 23222590. S2CID 4414368.
  92. Office of Nuclear Energy. "What is a Nuclear Microreactor?". Office of Nuclear Energy. Retrieved 18 August 2022.
  93. Williams, Adam David; Osborn, Douglas; Cohn, Brian (2019). Security Safety and Safeguards (3S) risk analysis for small modular reactors. INMM Annual Meeting. Sandia National Laboratory. OSTI 1640767. Retrieved 7 December 2023.
  94. 1 2 3 Small Modular Reactors: Regulatory Strategy, Approaches and Challenges. Canadian Nuclear Safety Commission (Report). 30 May 2016. DIS-16-04. Retrieved 7 December 2023.
  95. Ahonen, E.; Heinonen, J.; Lahtinen, N.; Tuomainen, M.; Lång, O. (2020). Preconditions for the safe use of small modular reactors: Outlook for the licensing system and regulatory control (PDF) (Report). Radiation and Nuclear Safety Authority. Retrieved 7 December 2023.
  96. 1 2 3 Applicability of the safety objectives to SMRs (PDF). ((Western European Nuclear Regulators Association)) (Report). 12 January 2021. Retrieved 7 December 2023.
  97. 1 2 Ostendorff, William C.; Cubbage, Amy E. (2015). "Licensing Small Modular Reactors: An Overview of Regulatory and Policy Issues" (PDF). Hoover Institution.
  98. 1 2 3 4 5 Black, Richard L. (2021). "Licensing of small modular reactors (SMRs)". In Ingersoll, Daniel T.; Carelli, Mario D. (eds.). Handbook of Small Modular Nuclear Reactors (2 ed.). Woodhead Publishing. pp. 279–292. doi:10.1016/B978-0-12-823916-2.00011-4. ISBN 978-0-85709-851-1.
  99. 1 2 3 4 Program on Technology Innovation: Review of Advanced Reactor Technology with Emphasis on Light-Water and Non-Light-Water Small Modular Reactor Designs (Technical report). Electric Power Research Institute. 2016. Retrieved 21 July 2026.
  100. "Released: New Guidance for Developing Principal Design Criteria for Non-Light-Water Reactors". US Department of Energy. 4 April 2018. Retrieved 21 July 2026.
  101. 1 2 Rysavy, Charles F.; Rhyne, Stephen K.; Shaw, Roger P. (December 2009). Small Modular Reactors (PDF). Special Committee on Nuclear Power, Section of Environment, Energy, and Resources. American Bar Association (Report). pp. 1–3. Archived from the original (PDF) on 4 March 2016.
  102. Sainati, Tristano; Locatelli, Giorgio; Brookes, Naomi (15 March 2015). "Small Modular Reactors: Licensing constraints and the way forward" (PDF). Energy. 82: 1092–1095. Bibcode:2015Ene....82.1092S. doi:10.1016/j.energy.2014.12.079.
  103. "Advanced Small Modular Reactors (SMRs)". Energy.gov. Retrieved 2 April 2019.
  104. Lyman, Edwin (September 2013). "Small Isn't Always Beautiful: Safety, Security, and Cost Concerns about Small Modular Reactors" (PDF). Union of Concerned Scientists. Archived from the original (PDF) on 16 March 2025. Retrieved 26 April 2026.
  105. "Small modular nuclear reactors won't solve nuclear power's safety, security and cost problems, new report finds". Union of Concerned Scientists. 26 September 2013. Retrieved 27 December 2023.
  106. Cho, Adrian (20 May 2020). "U.S. Department of Energy rushes to build advanced new nuclear reactors". Science. Retrieved 21 May 2020.
  107. Goff, Michael (10 July 2024). "Newly Signed Bill Will Boost Nuclear Reactor Deployment in the United States". Energy.gov. Retrieved 14 July 2024.
  108. "Training NuScale SMR operators". Nuclear Engineering International. 27 January 2021. Retrieved 21 July 2026.
  109. 1 2 Aliko, Erald; Emblemsvåg (January 2025). "Reviewing the Possible Role of Nuclear Power in Hybrid Energy Systems for Sustainable Development". International Journal of Energy Research (1) 9948447. Bibcode:2025IJER.202548447A. doi:10.1155/er/9948447.
  110. "Small Modular Reactors: Advances in SMR Developments 2024". iaea. 2024. doi:10.61092/iaea.3o4h-svum.
  111. 1 2 Michaelson, D; Jiang, J (1 December 2021). "Review of integration of small modular reactors in renewable energy microgrids". Renewable and Sustainable Energy Reviews. 152 111638. Bibcode:2021RSERv.15211638M. doi:10.1016/j.rser.2021.111638.
  112. Harrabin, Roger (23 March 2016). "The nuclear industry: a small revolution". BBC News. British Broadcasting Corporation. Retrieved 3 April 2016.
  113. Mignacca, Benito; Locatelli, Giorgio; Sainati, Tristano (20 June 2020). "Deeds not words: Barriers and remedies for Small Modular nuclear Reactors". Energy. 206 118137. Bibcode:2020Ene...20618137M. doi:10.1016/j.energy.2020.118137. hdl:11311/1204935.
  114. Islam, Md. Razibul; Gabbar, Hossam A. (6 June 2014). "Study of small modular reactors in modern microgrids". International Transactions on Electrical Energy Systems. 25 (9): 1943–1951. doi:10.1002/etep.1945. ISSN 2050-7038.
  115. Small modular reactors - Can building nuclear power become more cost-effective? (PDF). Ernst & Young (Report). gov.uk. March 2016. p. 38. Retrieved 29 February 2020.
  116. EIRP (1 July 2017). "What Will Advanced Nuclear Power Plants Cost?". Energy Innovation Reform Project. Archived from the original on 16 April 2022. Retrieved 3 November 2020.
  117. 1 2 Day, Paul (21 July 2020). "Industry heads warn nuclear costs must be slashed". Reuters. Retrieved 25 January 2023.
  118. 1 2 3 Bright, Zach (9 November 2023). "NuScale cancels first-of-a-kind nuclear project as costs surge". E&E News. Politico. Retrieved 9 November 2023.
  119. "US government backs NuScale projects at home and abroad". World Nuclear News. 19 October 2020. Retrieved 10 January 2023.
  120. "Further cost refinements announced for first US SMR plant". World Nuclear News. 9 January 2023. Retrieved 10 January 2023.
  121. Schlissel, David (11 January 2023). "Eye-popping new cost estimates released for NuScale small modular reactor". Institute for Energy Economics & Financial Analysis. Retrieved 27 January 2023.
  122. 1 2 Cho, Adrian (10 November 2023). "Deal to build pint-size nuclear reactors canceled". Science. Retrieved 11 November 2023.
  123. "Large-scale nuclear included in Australian cost report". World Nuclear News. 22 May 2024. Retrieved 23 May 2024.
  124. Graham, Paul; Hayward, Jenny; Foster, James (May 2024). "GenCost 2023-24" (PDF). Commonwealth Scientific and Industrial Research Organisation. pp. xii, 30–33, 50–52, 90. Retrieved 22 May 2024.
  125. "Canada's first SMR project: How is CAD20.9 billion cost calculated?". World Nuclear News. 23 May 2025. Retrieved 4 June 2025.
  126. 1 2 "IAEA Report: Updated status on global SMR development as of September 2014" (PDF). Archived from the original (PDF) on 19 October 2014.
  127. Small modular reactor technology catalogue (PDF) (3rd ed.). IAEA. 2025.
  128. "Aalo completes assembly of experimental reactor". World Nuclear News. 20 March 2026. Retrieved 22 March 2026.
  129. Arafat, Yasir (18 February 2026). "Aalo's 2026 Plan: Criticality and Beyond". Aalo. Retrieved 22 March 2026.
  130. 1 2 "China launches first commercial onshore small reactor project". Reuters. 14 July 2021. Archived from the original on 13 July 2021. Retrieved 14 July 2021.
  131. "Exclusivo: INVAP explora el desarrollo de un reactor modular compacto de 300 MW de potencia eléctrica • econojournal.com.ar". 16 December 2024.
  132. "Westinghouse Unveils Game-Changing AP300™ Small Modular Reactor for Mid-Sized Nuclear Technology". Westinghouse Electric.
  133. "ARC-100 passes Canadian pre-licensing milestone". World Nuclear News. 2 October 2019. Retrieved 4 October 2019.
  134. "The Angstrem project: Present status and development activities" (PDF). Retrieved 22 June 2017.
  135. "Oklo breaks ground at INL on Aurora reactor". Nuclear Newswire. 29 September 2025. Retrieved 21 April 2026.
  136. Patel, Sonal C. (23 September 2025). "Oklo Breaks Ground on INL Nuclear Fast Reactor Project, Launches Private Fuel Recycling Facility". Retrieved 23 April 2026.
  137. "Kepco E&C teams up with shipbuilder for floating reactors". World Nuclear News. 6 October 2020. Retrieved 7 October 2020.
  138. "Error" (PDF).
  139. "Specialists of JSC concern TITAN-2 continue to work at the site of the proryv project in Seversk" (in Russian).
  140. "GE Vernova Hitachi's BWRX-300". gevernova-nuclear.
  141. "Small modular reactors - Darlington SMR". OPG. Retrieved 5 April 2025.
  142. "Canadian regulator issues SMR construction licence". World Nuclear News. 4 April 2025. Retrieved 5 April 2025.
  143. "Darlington New Nuclear Project". Canadian Nuclear Safety Commission. 31 March 2026. Retrieved 26 April 2026.
  144. Jaureguy, Martina (14 September 2024). "Construction of first Argentine-made nuclear power reactor halted amid layoffs". Buenos Aires Herald. Retrieved 15 April 2025.
  145. Sergio, Arianna (4 November 2025). "Indiana goes nuclear: Reactor company moves to Indiana as state embraces small modular reactors". WTHR. Retrieved 27 April 2026.
  146. "Advances in Small Modular Reactor Technology Developments" (PDF).
  147. "Medlov FHR v1" (PDF).
  148. "První milník: koncepční návrh malého modulárního reaktoru byl představen veřejnosti | Centrum výzkumu Řež". cvrez.cz. Archived from the original on 3 March 2022. Retrieved 19 February 2020.
  149. "Westinghouse Begins Joint Licensing Process with U.S. and Canadian Regulators for eVinci™ Microreactor". Westinghouse Electric.
  150. "eVinci". www.nrc.gov. Retrieved 21 December 2023.
  151. "Demonstration HTR-PM connected to grid". www.world-nuclear-news.org. 21 December 2021.
  152. "Terrestrial Energy | Integral Molten Salt Reactor Technology". Terrestrial Energy. Retrieved 12 November 2016.
  153. Nusbaum, David (20 July 2025). "Nuclear Power Startups Are Heating up in Southern California, with Radiant's Ultra-Portable Microreactors a Major Player". The Los Angeles Times. Retrieved 26 April 2026.
  154. "MARVEL". Idaho National Laboratory. Retrieved 30 June 2026.
  155. Oliver, Matt (30 October 2024). "'Micro' nuclear reactor start-up backed by Britain goes bust". The Daily Telegraph. Retrieved 30 October 2024.
  156. "Formal licence review begins for Canadian SMR". World Nuclear News. 20 May 2021. Archived from the original on 22 May 2021. Retrieved 19 June 2021.
  157. "Nano Nuclear Energy to acquire Ultra Safe Nuclear assets for $8.5M". Yahoo!finance. 25 December 2024. Retrieved 28 December 2024.
  158. "NANO announces MMR rebrand on completion of USNC technology acquisition". World Nuclear News. 14 January 2025. Retrieved 12 March 2025.
  159. "University of Illinois Urbana-Champaign – KRONOS Micro Modular Reactor (KRONOS MMR™)". Nuclear Regulatory Commission. 19 May 2026. Retrieved 19 May 2026.
  160. Sinha, Sujita (18 November 2025). "US startup achieves first controlled fission reaction in major nuclear milestone". Interesting Engineering. Retrieved 18 November 2025.
  161. Kimball, Spencer (10 November 2025). "Nuclear startup that's suing NRC raises $130 million with backing from Anduril's Palmer Luckey and senior Palantir executive". CNBC. Retrieved 18 November 2025.
  162. Office of Nuclear Energy (30 May 2025). "NRC Approves NuScale Power's Uprated Small Modular Reactor Design". US Department of Energy. Retrieved 30 June 2026.
  163. Office of Nuclear Energy (20 January 2023). "NRC Certifies First U.S. Small Modular Reactor Design". US Department of Energy. Retrieved 30 June 2026.
  164. 1 2 "EDF rethink on Nuward SMR design in favour of established technologies". Nuclear Engineering International. 4 July 2024. Retrieved 16 July 2024.
  165. 1 2 "EDF pulls out of UK SMR competition; GEH, Rolls-Royce, Holtec and NuScale submit tenders". Nuclear Engineering International. 11 July 2024. Retrieved 16 July 2024.
  166. Proctor, Darrell (25 February 2020). "Tech Guru's Plan—Fight Climate Change with Nuclear Power". Power Magazine. Retrieved 23 November 2021.
  167. "World Nuclear Association - World Nuclear News". www.world-nuclear-news.org.
  168. Halper, Evan (18 February 2023). "See how this company plans to transform nuclear power". The Washington Post. Retrieved 31 March 2023.
  169. "Going Onshore". Retrieved 7 August 2024.
  170. "First SMRs for Export". Retrieved 7 August 2024.
  171. Tracey (24 June 2024). "Commissioning of first floating nuclear plant for Baimsky project set for 2028". Nuclear Engineering International. Retrieved 7 August 2024.
  172. "Rolls-Royce SMR begins UK Generic Design Assessment - Nuclear Engineering International". 4 April 2022.
  173. "Assessment of reactors - Generic Design Assessment (GDA) of new reactors". Office for Nuclear Regulation. Retrieved 11 June 2025.
  174. "SMR Book 2020" (PDF).
  175. "Home". www.leadcold.com.
  176. "SMR Dashboard". Retrieved 7 August 2024.
  177. "Atoms Grow in Appeal". Retrieved 7 August 2024.
  178. "SMR Prospects". Retrieved 7 August 2024.
  179. "Korea, Saudi Arabia progress with SMART collaboration". World Nuclear News. 7 January 2020. Retrieved 17 December 2023.
  180. "South Korean SMR design approved by regulator". World Nuclear News. 26 September 2024. Retrieved 26 September 2024.
  181. "SMR, LLC (A Holtec International Company)". United States Nuclear Regulatory Commission. 8 April 2026. Retrieved 23 April 2026.
  182. "Holtec submits partial construction permit application for SMRs at Palisades". Nuclear Newswire. 14 January 2026. Retrieved 26 April 2026.
  183. "UK regulators begin assessment of Holtec SMR". World Nuclear News. 7 December 2023. Retrieved 11 December 2023.
  184. "Coastal Co-generating Water Desalinating Facility Powered by Replaceable SVBR 75/100 Nuclear Reactor" (PDF). Archived from the original (PDF) on 11 October 2014. Retrieved 7 October 2014.
  185. "SVBR AKME Antysheva" (PDF). www.iaea.org.
  186. "Moltex Energy | Safer Cheaper Cleaner Nuclear | Stable Salt Reactors | SSR". moltexenergy.com. Retrieved 10 April 2018.
  187. "Phase 1 pre-licensing vendor design review executive summary: Moltex Energy". 25 May 2021. Retrieved 31 August 2022.
  188. Jean, Renée (23 April 2026). "TerraPower Starts Building Wyoming Nuclear Plant Despite 60 MPH Wind Gusts". Cowboy State Daily. Retrieved 23 April 2026.
  189. "ThorCon | Thorium Molten Salt Reactor". ThorCon Power. Retrieved 7 January 2020.
  190. "Urenco ends its support for U-Battery advanced reactor". Nuclear Engineering International. 22 March 2023. Retrieved 24 March 2023.
  191. Litvak, Anya (2 February 2014). "Westinghouse backs off small nuclear plants". Pittsburgh Post-Gazette. Retrieved 7 October 2020.
  192. "Energy Department Announces New Investments in Advanced Nuclear Power Reactors..." US Department of Energy. Retrieved 16 January 2016.
  193. "X-energy, Dow apply to build an advanced reactor project in Texas". Nuclear Newswire. 31 March 2025. Retrieved 21 April 2026.
  194. "Advances in Small Modular Reactor Technology Developments -2022 Edition" (PDF). aris.iaea.org. IAEA. Retrieved 20 December 2023.
  195. "Advances in Small Modular Reactor Technology Developments" (PDF). aris.iaea.org. IAEA. Retrieved 19 December 2023.
  196. Liou, Joanne (13 September 2023). "What are Small Modular Reactors (SMRs)?". International Atomic Energy Agency. Retrieved 20 February 2024.
  197. 1 2 3 "CNEA and Nucleoeléctrica sign CAREM SMR agreement: New Nuclear". World Nuclear News. 30 October 2023. Retrieved 14 December 2023.
  198. Government of New Brunswick, Canada (26 June 2018). "$10 million committed for nuclear research cluster". www2.gnb.ca.
  199. Government of New Brunswick, Canada (9 July 2018). "Partner announced in nuclear research cluster". www2.gnb.ca.
  200. Government of New Brunswick, Canada (13 July 2018). "Moltex to partner in nuclear research and innovation cluster". www2.gnb.ca.
  201. "N.B. makes step forward on second nuclear reactor at Point Lepreau". Atlantic. 9 December 2019. Archived from the original on 10 December 2019. Retrieved 19 January 2020.
  202. "Collaboration memorandum of understanding" (PDF). Government of Ontario. Retrieved 2 December 2019.
  203. "Premier Ford, Premier Higgs and Premier Moe Sign Agreement on the Development of Small Modular Reactors". ontario.ca. Government of Ontario. Retrieved 2 December 2019.
  204. "Opinion: Small nuclear reactors can play big role in clean energy transition". calgaryherald.
  205. "Darlington advances first SMR unit". Nuclear Engineering International. 24 September 2025. Retrieved 3 July 2026.
  206. Gallier, Susan (5 June 2026). "North American construction is back-smaller and faster-at OPG's Darlington". Nuclear Newswire. Retrieved 3 July 2026.
  207. "Pact signed to advance IMSR development in western Canada". NuclearNewswire. Retrieved 18 August 2022.
  208. "CNNC launches demonstration SMR project". World Nuclear News. 22 July 2019.
  209. "China approves construction of demonstration SMR: New Nuclear - World Nuclear News". world-nuclear-news.org. 7 June 2021. Retrieved 13 July 2021.
  210. Editing staff (13 July 2021). "China launches first commercial onshore small reactor project". Reuters.
  211. Largue, Pamela (11 August 2023). "Core module instaled at China's Linglong One modular reactor". Power Engineering International. Retrieved 13 August 2023.
  212. EDF (16 December 2022). "NUWARD SMR, leading the way to a low‑carbon world". EDF.fr. Retrieved 14 December 2023.
  213. Lopez, Alicia (10 August 2023). "Licensing process begins for Nuward Small Modular Reactor project in France". Foro Nuclear. Retrieved 14 December 2023.
  214. "EDF simplifies Nuward SMR design". World Nuclear News. 7 January 2025. Retrieved 19 January 2025.
  215. "Billionaire Pole to build nuclear reactor". www.thefirstnews.com. Retrieved 17 February 2020.
  216. "Feasibility study completed on SMRs for Poland - Nuclear Engineering International". www.neimagazine.com. 18 December 2020. Retrieved 4 January 2021.
  217. "NuScale, KGHM agree to deploy SMRs in Poland". February 2022.
  218. Chirileasa, Andrei (24 May 2022). "Romania, the US agree on location of first small-scale nuclear reactor". Romania Insider. Retrieved 22 November 2022.
  219. Agerpres. "Ghiţă (Nuclearelectrica): Suntem încrezători în potenţialul pe care amplasamentul de la." www.agerpres.ro (in Romanian). Retrieved 22 November 2022.
  220. Despa, Oana (28 June 2022). "Prima centrală cu mini reactor nuclear din Europa va fi la Doicești, Dâmbovița. Cum funcționează o centrală SMR". Europa Liberă România (in Romanian). Retrieved 22 November 2022.
  221. "Final Investment Decision taken for Romanian SMR project". World Nuclear News. 13 February 2026. Retrieved 5 July 2026.
  222. "Planned SMR nuclear power plant to cost $6-7 billion, Romanian PM says". Reuters. 13 February 2026. Retrieved 5 July 2026.
  223. 1 2 Larson, Aaron (1 March 2024). "A Closer Look at Two Operational Small Modular Reactor Designs". POWER. Retrieved 3 July 2026.
  224. Pioro, Igor L.; Duffey, Romney B.; Kirillov, Pavel L.; Fialko, Natalia M.; Pioro, Roman M. (2023). "Current status and future trends in the world nuclear-power industry". Handbook of Generation IV Nuclear Reactors (2nd ed.). Woodhead Publishing. doi:10.1016/C2019-0-01219-8. ISBN 978-0-12-820588-4. PWRs-KLT-40s SMRs are the first SMRs in the world (connected to grid in December of 2019)...
  225. McCann, Kate (2 April 2016). "Mini nuclear power stations in UK towns move one step closer". The Sunday Telegraph. Retrieved 3 April 2016.
  226. "UK confirms funding for Rolls-Royce SMR". World Nuclear News. 7 November 2019. Retrieved 8 November 2019.
  227. Macfarlane-Smith, Sophie (8 September 2021). "Rolls-Royce SMR - Nuclear Academics Meeting" (PDF). Rolls-Royce. Retrieved 25 September 2021.
  228. "Rolls-Royce plans 16 mini-nuclear plants for UK". BBC News. 11 November 2020. Retrieved 12 November 2020.
  229. "Rolls-Royce gets funding to develop mini nuclear reactors". BBC. 9 November 2021. Retrieved 10 November 2021.
  230. "Study identifies potential Rolls-Royce SMR sites". World Nuclear News. 11 November 2022. Retrieved 16 November 2022.
  231. "Nuclear energy: How environmentally-friendly and safe is it?". BBC News. 17 July 2023. Archived from the original on 10 June 2023. Retrieved 19 July 2023.
  232. Holdmann, Gwen (22 June 2023). "Nuclear Power and the Perils of Pioneering". ACEP blog. University of Alaska Fairbanks. Archived from the original on 1 October 2023. Retrieved 3 July 2026.
  233. Rettig, Molly (23 January 2011). "Why nuclear energy is on hold for Alaska". Fairbanks Daily News-Miner. Archived from the original on 17 April 2012. Retrieved 13 March 2012.
  234. "Carbon Free". www.uamps.com. Archived from the original on 19 January 2017. Retrieved 8 April 2016.
  235. Gardner, Timothy (9 November 2023). "My View Following Saved Energy Energy Grid & Infrastructure Nuclear Sustainable Markets NuScale ends Idaho project, in blow to US nuclear power ambitions". reuters.com. Reuters. Retrieved 15 December 2023.
  236. "Technology Deployment". iea.org. US Department of Energy. Retrieved 19 December 2023.
  237. Musto, Julia (25 January 2023). "US approves first small modular nuclear reactor design". FOX News. Retrieved 17 December 2023.
  238. Martucci, Brian (12 March 2024). "Global small modular reactor pipeline hits 22 GW, with US leading the market: WoodMac". Utility Dive. Retrieved 4 December 2025.
  239. U.S. Nuclear Regulatory Commission (17 December 2019). "NRC to Issue Early Site Permit to Tennessee Valley Authority for Clinch River Site" (PDF). nrc.gov. Retrieved 24 December 2019.
  240. "TVA - Small Modular Reactors". www.tva.gov. Retrieved 8 April 2016.
  241. Franklin, Mariah (2 July 2026). "TVA clears huge hurdle in race to build America's first small nuclear reactor". Knoxville News Sentinel. knox news. Retrieved 3 July 2026.
  242. "Clinch River construction permit recommendation follows safety evaluation". Nuclear Newswire. 1 July 2026. Retrieved 3 July 2026.
  243. "NuScale Proudly Supports TVA and ENTRA1 Energy Announcement of Landmark 6-Gigawatt Small Module Reactor (SMR) Deployment Program". NuScale Power. 3 September 2025. Retrieved 5 January 2026.
  244. "Two SMR projects selected for US federal funding". World Nuclear News. 3 December 2025. Retrieved 4 December 2025.
  245. "First concrete marks start of safety-related construction for Hermes test reactor". Nuclear Newswire. American Nuclear Society. 8 May 2025. Retrieved 22 February 2026.
  246. DeGeurin, Mack (15 October 2024). "Google bets big on 'mini' nuclear reactors to feed its AI demands". Popular Science. Retrieved 15 October 2024.
  247. Silva, João da (15 October 2024). "Google turns to nuclear to power AI data centres". BBC. Retrieved 15 October 2024.
  248. Terrell, Michael (14 October 2024). "New nuclear clean energy agreement with Kairos Power". Google. Retrieved 15 October 2024.
  249. "Kairos Power breaks ground on first power-producing reactor in Oak Ridge". Nuclear Newswire. 21 April 2026. Retrieved 22 April 2026.
  250. Paleja, Ameya (21 April 2026). "Kairos breaks ground for first 4th-gen nuclear reactor in US to power Google data centers". Interesting Engineering. MSN. Retrieved 22 April 2026.
  251. Patel, Sonal C. (18 June 2026). "In a First for Advanced Nuclear: Siemens Energy Turbine Package Advances for Oklo's Aurora-INL". POWER. Retrieved 3 July 2026.
  252. Szondy, David (9 June 2026). "Modular next-gen US nuclear reactor goes critical". New Atlas. Retrieved 11 June 2026.
  253. "Deployable Energy achieves criticality at INL". Nuclear Newswire. 1 July 2026. Retrieved 3 July 2026.
  254. Helman, Christopher (2 July 2026). "Trump Meets Own July 4 Deadline To Go 'Critical' With Three New Mini Nuclear Reactors". Forbes. Retrieved 3 July 2026.

Further reading

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