Solar power

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Short description: Conversion of energy from sunlight into electricity
A solar photovoltaic system array on a rooftop in Hong Kong
The first three concentrated solar power (CSP) units of Spain's Solnova Solar Power Station in the foreground, with the PS10 and PS20 solar power towers in the background
Estimated solar energy available for power generation. The map shows the average daily/yearly sum of electricity production from a 1 kW-peak grid-connected solar PV power plant covering the period from 1994/1999/2007 (depending on the geographical region) to 2018.[1]

Solar power, also known as solar electricity, is the conversion of energy from sunlight into electricity, either directly using photovoltaics (PV) or indirectly using concentrated solar power. Photovoltaic cells convert light into an electric current using the photovoltaic effect.[2] Concentrated solar power systems use lenses or mirrors and solar tracking systems to focus a large area of sunlight to a hot spot, often to drive a steam turbine.

Photovoltaics were initially solely used as a source of electricity for small and medium-sized applications, from the calculator powered by a single solar cell to remote homes powered by an off-grid rooftop PV system. Commercial concentrated solar power plants were first developed in the 1980s. Since then, as the cost of solar electricity has fallen, grid-connected solar PV systems' capacity and production have grown more or less exponentially, doubling about every three years. Millions of installations and gigawatt-scale photovoltaic power stations continue to be built, with half of the new generation capacity being solar in 2021.[3]

In 2023, solar generated 5% of the world's electricity,[4] compared to 1% in 2015, when the Paris Agreement to limit climate change was signed.[5] Along with onshore wind, in most countries, the cheapest levelised cost of electricity for new installations is utility-scale solar.[6][7]

Almost half the solar power installed in 2022 was rooftop.[8] Low-carbon power has been recommended as part of a plan to limit climate change. The International Energy Agency said in 2022 that more effort was needed for grid integration and the mitigation of policy, regulation and financing challenges.[9]


Potential

Geography affects solar energy potential because different locations receive different amounts of solar radiation. In particular, with some variations, areas that are closer to the equator generally receive higher amounts of solar radiation. However, the use of photovoltaics that can follow the position of the Sun can significantly increase the solar energy potential in areas that are farther from the equator.[10] Time variation affects the potential of solar energy, because during the night there is little solar radiation on the surface of the Earth for solar panels to absorb. This limits the amount of energy that solar panels can absorb in one day. Cloud cover can affect the potential of solar panels because clouds block incoming light from the Sun and reduce the light available for solar cells.

Besides, land availability has a large effect on the available solar energy because solar panels can only be set up on land that is otherwise unused and suitable for solar panels. Roofs are a suitable place for solar cells, as many people have discovered that they can collect energy directly from their homes this way. Other areas that are suitable for solar cells are lands that are not being used for businesses, where solar plants can be established.[10]

Technologies

Solar power plants use one of two technologies:

  • Photovoltaic (PV) systems use solar panels, either on rooftops or in ground-mounted solar farms, converting sunlight directly into electric power.
  • Concentrated solar power (CSP) uses mirrors or lenses to concentrate sunlight to extreme heat to eventually make steam, which is converted into electricity by a turbine.

Photovoltaic cells

Main pages: Chemistry:Photovoltaics and Physics:Solar cell
Schematics of a grid-connected residential PV power system[11]

A solar cell, or photovoltaic cell, is a device that converts light into electric current using the photovoltaic effect. The first solar cell was constructed by Charles Fritts in the 1880s.[12] The German industrialist Ernst Werner von Siemens was among those who recognized the importance of this discovery.[13] In 1931, the German engineer Bruno Lange developed a photo cell using silver selenide in place of copper oxide,[14] although the prototype selenium cells converted less than 1% of incident light into electricity. Following the work of Russell Ohl in the 1940s, researchers Gerald Pearson, Calvin Fuller and Daryl Chapin created the silicon solar cell in 1954.[15] These early solar cells cost US$286/watt and reached efficiencies of 4.5–6%.[16] In 1957, Mohamed M. Atalla developed the process of silicon surface passivation by thermal oxidation at Bell Labs.[17][18] The surface passivation process has since been critical to solar cell efficiency.[19]

(As of 2022) over 90% of the market is crystalline silicon.[20] The array of a photovoltaic system, or PV system, produces direct current (DC) power which fluctuates with the sunlight's intensity. For practical use this usually requires conversion to alternating current (AC), through the use of inverters.[11] Multiple solar cells are connected inside panels. Panels are wired together to form arrays, then tied to an inverter, which produces power at the desired voltage, and for AC, the desired frequency/phase.[11]

Many residential PV systems are connected to the grid wherever available, especially in developed countries with large markets.[21] In these grid-connected PV systems, use of energy storage is optional. In certain applications such as satellites, lighthouses, or in developing countries, batteries or additional power generators are often added as back-ups. Such stand-alone power systems permit operations at night and at other times of limited sunlight.

In "vertical agrivoltaics" system, solar cells are oriented vertically on farmland, to allow the land to both grow crops and generate renewable energy.[22] Other configurations include floating solar farms, placing solar canopies over parking lots, and installing solar panels on roofs.[22]

Thin-film solar

Main page: Engineering:Thin-film solar cell

A thin-film solar cell is a second generation solar cell that is made by depositing one or more thin layers, or thin film (TF) of photovoltaic material on a substrate, such as glass, plastic or metal. Thin-film solar cells are commercially used in several technologies, including cadmium telluride (CdTe), copper indium gallium diselenide (CIGS), and amorphous thin-film silicon (a-Si, TF-Si).[23]

Perovskite solar cells

Concentrated solar power

A parabolic collector concentrates sunlight onto a tube in its focal point.
Main page: Engineering:Concentrated solar power

Concentrated solar power (CSP), also called "concentrated solar thermal", uses lenses or mirrors and tracking systems to concentrate sunlight, then use the resulting heat to generate electricity from conventional steam-driven turbines.[24]

A wide range of concentrating technologies exists among the best known are the parabolic trough, the compact linear Fresnel reflector, the dish Stirling and the solar power tower. Various techniques are used to track the sun and focus light. In all of these systems a working fluid is heated by the concentrated sunlight and is then used for power generation or energy storage.[25] Thermal storage efficiently allows overnight electricity generation,[26] thus complementing PV.[27] CSP generates a very small share of solar power and in 2022 the IEA said that CSP should be better paid for its storage.[28]

(As of 2021) the levelized cost of electricity from CSP is over twice that of PV.[29] However, their very high temperatures may prove useful to help decarbonize industries (perhaps via hydrogen) which need to be hotter than electricity can provide.[30]

Hybrid systems

Main page: Chemistry:Hybrid power

A hybrid system combines solar with energy storage and/or one or more other forms of generation. Hydro,[31][32] wind[33][34] and batteries[35] are commonly combined with solar. The combined generation may enable the system to vary power output with demand, or at least smooth the solar power fluctuation.[36][37] There is a lot of hydro worldwide, and adding solar panels on or around existing hydro reservoirs is particularly useful, because hydro is usually more flexible than wind and cheaper at scale than batteries,[38] and existing power lines can sometimes be used.[39][40]

Development and deployment

The share of electricity production from solar, 2022[41]
Yearly solar generation by continent
Benefitting from favorable policies and declining costs of modules, photovoltaic solar installation has grown consistently, with China expected to account for 50% of new global solar photovoltaic projects by 2024.[42][43]
The growth of solar PV on a semi-log scale since 1996
Electricity production by source

Early days

The early development of solar technologies starting in the 1860s was driven by an expectation that coal would soon become scarce, such as experiments by Augustin Mouchot.[44] Charles Fritts installed the world's first rooftop photovoltaic solar array, using 1%-efficient selenium cells, on a New York City roof in 1884.[45] However, development of solar technologies stagnated in the early 20th century in the face of the increasing availability, economy, and utility of coal and petroleum.[46] Bell Telephone Laboratories’ 1950s research used silicon wafers with a very thin coating of boron. The “Bell Solar Battery” was described as 6% efficient, with a square yard of the panels generating 50 watts.[47] The first satellite with solar panels was launched in 1957.[48]

By the 1970s, solar power was being used on satellites, but the cost of solar power was considered to be unrealistic for conventional applications.[49] In 1974 it was estimated that only six private homes in all of North America were entirely heated or cooled by functional solar power systems.[50] However, the 1973 oil embargo and 1979 energy crisis caused a reorganization of energy policies around the world and brought renewed attention to developing solar technologies.[51][52]

Deployment strategies focused on incentive programs such as the Federal Photovoltaic Utilization Program in the US and the Sunshine Program in Japan. Other efforts included the formation of research facilities in the United States (SERI, now NREL), Japan (NEDO), and Germany (Fraunhofer ISE).[53] Between 1970 and 1983 installations of photovoltaic systems grew rapidly. In the United States, President Jimmy Carter set a target of producing 20% of U.S. energy from solar by the year 2000, but his successor, Ronald Reagan, removed the funding for research into renewables.[49] Falling oil prices in the early 1980s moderated the growth of photovoltaics from 1984 to 1996.

Mid-1990s to 2010

In the mid-1990s development of both, residential and commercial rooftop solar as well as utility-scale photovoltaic power stations began to accelerate again due to supply issues with oil and natural gas, global warming concerns, and the improving economic position of PV relative to other energy technologies.[49][54] In the early 2000s, the adoption of feed-in tariffs—a policy mechanism, that gives renewables priority on the grid and defines a fixed price for the generated electricity—led to a high level of investment security and to a soaring number of PV deployments in Europe.

2010s

For several years, worldwide growth of solar PV was driven by European deployment, but it has since shifted to Asia, especially China and Japan, and to a growing number of countries and regions all over the world. The largest manufacturers of solar equipment were based in China.[55][56] Although concentrated solar power capacity grew more than tenfold, it remained a tiny proportion of the total,Cite error: Closing </ref> missing for <ref> tag utility scale solar was still the cheapest energy source in many countries due to the rising costs of other energy sources, such as natural gas.[57] In 2022, global solar generation capacity exceeded 1 TW for the first time.[58] However, fossil-fuel subsidies have slowed the growth of solar generation capacity.[59]

Current status

About half of installed capacity is utility scale.[60]

Forecasts

Actual annual deployments of solar PV vs predictions by the IEA for the period 2002–2016. Predictions have largely and consistently underestimated actual growth.

Most new renewable capacity between 2022 and 2027 is forecast to be solar, surpassing coal as the largest source of installed power capacity.[61](p26) Utility scale is forecast to become the largest source of electricity in all regions except sub-Saharan Africa by 2050.[60]

According to a 2021 study, global electricity generation potential of rooftop solar panels is estimated at 27 PWh per year at costs ranging from $40 (Asia) to $240 per MWh (US, Europe). Its practical realization will however depend on the availability and cost of scalable electricity storage solutions.[62]

Photovoltaic power stations

Concentrating solar power stations

Ivanpah Solar Electric Generating System with all three towers under load during February 2014, with the Clark Mountain Range seen in the distance
Part of the 354 MW Solar Energy Generating Systems (SEGS) parabolic trough solar complex in northern San Bernardino County, California

Commercial concentrating solar power (CSP) plants, also called "solar thermal power stations", were first developed in the 1980s. The 377  MW Ivanpah Solar Power Facility, located in California's Mojave Desert, is the world's largest solar thermal power plant project. Other large CSP plants include the Solnova Solar Power Station (150 MW), the Andasol solar power station (150 MW), and Extresol Solar Power Station (150 MW), all in Spain. The principal advantage of CSP is the ability to efficiently add thermal storage, allowing the dispatching of electricity over up to a 24-hour period. Since peak electricity demand typically occurs at about 5 pm, many CSP power plants use 3 to 5 hours of thermal storage.[63]

Economics

Cost per watt

The typical cost factors for solar power include the costs of the modules, the frame to hold them, wiring, inverters, labour cost, any land that might be required, the grid connection, maintenance and the solar insolation that location will receive.

Photovoltaic systems use no fuel, and modules typically last 25 to 40 years.[64] Thus upfront capital and financing costs make up 80 to 90% of the cost of solar power.[61](p165)

Some countries are considering price caps,[65] whereas others prefer contracts for difference.[66]

The large magnitude of solar energy available makes it a highly appealing source of electricity. In 2020, solar energy was the cheapest source of electricity.[67][68] In Saudi Arabia, a power purchase agreement (PPA) was signed in April 2021 for a new solar power plant in Al-Faisaliah. The project has recorded the world's lowest cost for solar PV electricity production of USD 1.04 cents/ kWh.[69]

Installation prices

Expenses of high-power band solar modules has greatly decreased over time. Beginning in 1982, the cost per kW was approximately 27,000 American dollars, and in 2006 the cost dropped to approximately 4,000 American dollars per kW. The PV system in 1992 cost approximately 16,000 American dollars per kW and it dropped to approximately 6,000 American dollars per kW in 2008.[70]

In 2021 in the US, residential solar cost from 2 to 4 dollars/watt (but solar shingles cost much more)[71] and utility solar costs were around $1/watt.[72]

Productivity by location

The productivity of solar power in a region depends on solar irradiance, which varies through the day and year and is influenced by latitude and climate. PV system output power also depends on ambient temperature, wind speed, solar spectrum, the local soiling conditions, and other factors.

Onshore wind power tends to be the cheapest source of electricity in Northern Eurasia, Canada, some parts of the United States, and Patagonia in Argentina: whereas in other parts of the world mostly solar power (or less often a combination of wind, solar and other low carbon energy) is thought to be best.[73](p8) Modelling by Exeter University suggests that by 2030 solar will be cheapest in all countries except for some in north-east Europe.[74]

The locations with highest annual solar irradiance lie in the arid tropics and subtropics. Deserts lying in low latitudes usually have few clouds and can receive sunshine for more than ten hours a day.[75][76] These hot deserts form the Global Sun Belt circling the world. This belt consists of extensive swathes of land in Northern Africa, Southern Africa, Southwest Asia, Middle East, and Australia , as well as the much smaller deserts of North and South America.[77]

So solar is (or is predicted to become) the cheapest source of energy in all of Central America, Africa, the Middle East, India, South-east Asia, Australia, and several other places.[73](p8)

Different measurements of solar irradiance (direct normal irradiance, global horizontal irradiance) are mapped below:

Self-consumption

In cases of self-consumption of solar energy, the payback time is calculated based on how much electricity is not purchased from the grid.[78] However, in many cases, the patterns of generation and consumption do not coincide, and some or all of the energy is fed back into the grid. The electricity is sold, and at other times when energy is taken from the grid, electricity is bought. The relative costs and prices obtained affect the economics. In many markets, the price paid for sold PV electricity is significantly lower than the price of bought electricity, which incentivizes self-consumption.[79] Moreover, separate self-consumption incentives have been used in e.g., Germany and Italy.[79] Grid interaction regulation has also included limitations of grid feed-in in some regions in Germany with high amounts of installed PV capacity.[79][80] By increasing self-consumption, the grid feed-in can be limited without curtailment, which wastes electricity.[81]

A good match between generation and consumption is key for high self-consumption. The match can be improved with batteries or controllable electricity consumption.[81] However, batteries are expensive, and profitability may require the provision of other services from them besides self-consumption increase,[82] for example avoiding power outages.[83] Hot water storage tanks with electric heating with heat pumps or resistance heaters can provide low-cost storage for self-consumption of solar power.[81] Shiftable loads, such as dishwashers, tumble dryers and washing machines, can provide controllable consumption with only a limited effect on the users, but their effect on self-consumption of solar power may be limited.[81]

Energy pricing, incentives and taxes

The original political purpose of incentive policies for PV was to facilitate an initial small-scale deployment to begin to grow the industry, even where the cost of PV was significantly above grid parity, to allow the industry to achieve the economies of scale necessary to reach grid parity. Since reaching grid parity some policies are implemented to promote national energy independence,[84] high tech job creation[85] and reduction of CO2 emissions.[84]

Financial incentives for photovoltaics differ across countries, including Australia,[86] China,[87] Germany,[88] India,[89] Japan, and the United States and even across states within the US.

Net metering

Net metering, unlike a feed-in tariff, requires only one meter, but it must be bi-directional.

In net metering the price of the electricity produced is the same as the price supplied to the consumer, and the consumer is billed on the difference between production and consumption. Net metering can usually be done with no changes to standard electricity meters, which accurately measure power in both directions and automatically report the difference, and because it allows homeowners and businesses to generate electricity at a different time from consumption, effectively using the grid as a giant storage battery. With net metering, deficits are billed each month while surpluses are rolled over to the following month. Best practices call for perpetual roll over of kWh credits.[90] Excess credits upon termination of service are either lost or paid for at a rate ranging from wholesale to retail rate or above, as can be excess annual credits.[91]

Community solar

Community solar farm in the town of Wheatland, Wisconsin[92]

A community solar project is a solar power installation that accepts capital from and provides output credit and tax benefits to multiple customers, including individuals, businesses, nonprofits, and other investors. Participants typically invest in or subscribe to a certain kW capacity or kWh generation of remote electrical production.[93]

Taxes

In some countries tariffs (import taxes) are imposed on imported solar panels.[94][95]

Grid integration

Main pages: Engineering:Energy storage and Engineering:Grid energy storage
Construction of the Salt Tanks which provide efficient thermal energy storage[96] so that output can be provided after sunset, and output can be scheduled to meet demand requirements.[97] The 280 MW Solana Generating Station is designed to provide six hours of energy storage. This allows the plant to generate about 38% of its rated capacity over the course of a year.[98]
Thermal energy storage. The Andasol CSP plant uses tanks of molten salt to store solar energy.
Pumped-storage hydroelectricity (PSH). This facility in Geesthacht, Germany, also includes a solar array.

Variability

The overwhelming majority of electricity produced worldwide is used immediately because traditional generators can adapt to demand and storage is usually more expensive. Both solar power and wind power are sources of variable renewable power, meaning that all available output must be used locally, carried on transmission lines to be used elsewhere, or stored (e.g., in a battery). Since solar energy is not available at night, storing it so as to have continuous electricity availability is potentially an important issue, particularly in off-grid applications and for future 100% renewable energy scenarios.[99]

Solar electricity is inherently variable but somewhat predictable by time of day, location, and seasons (see solar power forecasting). Solar is intermittent due to the day/night cycles and variable weather conditions. The challenge of integrating solar power in any given electric utility varies significantly. In places with hot summers and mild winters, solar is well matched to daytime cooling demands.[100]

Energy storage

Concentrated solar power plants may use thermal storage to store solar energy, such as in high-temperature molten salts. These salts are an effective storage medium because they are low-cost, have a high specific heat capacity, and can deliver heat at temperatures compatible with conventional power systems. This method of energy storage is used, for example, by the Solar Two power station, allowing it to store 1.44 TJ in its 68 m3 storage tank, enough to provide full output for close to 39 hours, with an efficiency of about 99%.[101]

In stand alone PV systems batteries are traditionally used to store excess electricity. With grid-connected photovoltaic power systems, excess electricity can be sent to the electrical grid. Net metering and feed-in tariff programs give these systems a credit for the electricity they produce. This credit offsets electricity provided from the grid when the system cannot meet demand, effectively trading with the grid instead of storing excess electricity.[102] When wind and solar are a small fraction of the grid power, other generation techniques can adjust their output appropriately, but as these forms of variable power grow, additional balance on the grid is needed. As prices are rapidly declining, PV systems increasingly use rechargeable batteries to store a surplus to be used later at night. Batteries used for grid-storage can stabilize the electrical grid by leveling out peak loads for a few hours. In the future, less expensive batteries could play an important role on the electrical grid, as they can charge during periods when generation exceeds demand and feed their stored energy into the grid when demand is higher than generation.

Common battery technologies used in today's home PV systems include nickel-cadmium, lead-acid, nickel metal hydride, and lithium-ion.[103][104][better source needed]Lithium-ion batteries have the potential to replace lead-acid batteries in the near future, as they are being intensively developed and lower prices are expected due to economies of scale provided by large production facilities such as the Gigafactory 1. In addition, the Li-ion batteries of plug-in electric cars may serve as future storage devices in a vehicle-to-grid system. Since most vehicles are parked an average of 95% of the time, their batteries could be used to let electricity flow from the car to the power lines and back. Other rechargeable batteries used for distributed PV systems include, sodium–sulfur and vanadium redox batteries, two prominent types of a molten salt and a flow battery, respectively.[105][106][107]

Seasonal cycle of capacity factors for wind and photovoltaics in Europe under idealized assumptions. The figure illustrates the balancing effects of wind and solar energy at the seasonal scale (Kaspar et al., 2019).[108]

Other technologies

Solar power plants, while they can be curtailed, usually simply output as much power as possible. Therefore in an electricity system without sufficient grid energy storage, generation from other sources (coal, biomass, natural gas, nuclear, hydroelectricity) generally go up and down in reaction to the rise and fall of solar electricity and variations in demand (see load following power plant).

Conventional hydroelectric dams work very well in conjunction with solar power; water can be held back or released from a reservoir as required. Where suitable geography is not available, pumped-storage hydroelectricity can use solar power to pump water to a high reservoir on sunny days, then the energy is recovered at night and in bad weather by releasing water via a hydroelectric plant to a low reservoir where the cycle can begin again.[109]

While hydroelectric and natural gas plants can quickly respond to changes in load; coal, biomass and nuclear plants usually take considerable time to respond to load and can only be scheduled to follow the predictable variation. Depending on local circumstances, beyond about 20–40% of total generation, grid-connected intermittent sources like solar tend to require investment in some combination of grid interconnections, energy storage or demand side management. In countries with high solar generation, such as Australia, electricity prices may become negative in the middle of the day when solar generation is high, thus incentivizing new battery storage.[110][111]

The combination of wind and solar PV has the advantage that the two sources complement each other because the peak operating times for each system occur at different times of the day and year.[112] The power generation of such solar hybrid power systems is therefore more constant and fluctuates less than each of the two component subsystems.[113] Solar power is seasonal, particularly in northern/southern climates, away from the equator, suggesting a need for long term seasonal storage in a medium such as hydrogen or pumped hydroelectric.[114]

Environmental effects

Greenhouse gas emissions per energy source. Solar power is one of the sources with the least greenhouse gas emissions.
Part of the Senftenberg Solarpark, a solar photovoltaic power plant located on former open-pit mining areas close to the city of Senftenberg, in Eastern Germany. The 78 MW Phase 1 of the plant was completed within three months.

Solar power is cleaner than electricity from fossil fuels,[20] so can be good for the environment when it replaces that.[115] Solar power does not lead to any harmful emissions during operation, but the production of the panels leads to some amount of pollution. A 2021 study estimated the carbon footprint of manufacturing monocrystalline panels at 515 g CO
2
/kWp in the US and 740 g CO
2
/kWp in China,[116] but this is expected to fall as manufacturers use more clean electricity and recycled materials.[117] Solar power carries an upfront cost to the environment via production with a carbon payback time of several years (As of 2022),[117] but offers clean energy for the remainder of their 30-year lifetime.[118]

The life-cycle greenhouse-gas emissions of solar farms are less than 50 gram (g) per kilowatt-hour (kWh),[119][120][121] but with battery storage could be up to 150 g/kWh.[122] In contrast, a combined cycle gas-fired power plant without carbon capture and storage emits around 500 g/kWh, and a coal-fired power plant about 1000 g/kWh.[123] Similar to all energy sources where their total life cycle emissions are mostly from construction, the switch to low carbon power in the manufacturing and transportation of solar devices would further reduce carbon emissions.[121]

Lifecycle surface power density of solar power varies a lot[124] but averages about 7 W/m2, compared to about 240 for nuclear power and 480 for gas.[125] However when the land required for gas extraction and processing is accounted for gas power is estimated to have not much higher power density than solar.[20] PV requires much larger amounts of land surface to produce the same nominal amount of energy as sources[which?] with higher surface power density and capacity factor. According to a 2021 study, obtaining 25 to 80% of electricity from solar farms in their own territory by 2050 would require the panels to cover land ranging from 0.5 to 2.8% of the European Union, 0.3 to 1.4% in India, and 1.2 to 5.2% in Japan and South Korea.[126] Occupation of such large areas for PV farms could drive residential opposition as well as lead to deforestation, removal of vegetation and conversion of farm land.[127] However some countries, such as South Korea and Japan, use land for agriculture under PV,[128][129] or floating solar,[130] together with other low-carbon power sources.[131][132] Worldwide land use has minimal ecological impact.[133] Land use can be reduced to the level of gas power by installing on buildings and other built up areas.[124]

Harmful materials are used in the production of solar panels, but in generally in small amounts.[134] (As of 2022) the environmental impact of perovskite is hard to estimate, but there is some concern that lead may become a problem.[20] A 2021 International Energy Agency study projects the demand for copper will double by 2040. The study cautions that supply needs to increase rapidly to match demand from large-scale deployment of solar and required grid upgrades.[135][136] More tellurium and indium may also be needed and recycling may help.[20]

As solar panels are sometimes replaced with more efficient panels, the second-hand panels are sometimes reused in developing countries, for example in Africa.[137] Several countries have specific regulations for the recycling of solar panels.[138][139][140] Although maintenance cost is already low compared to other energy sources,[141] some academics have called for solar power systems to be designed to be more repairable.[142][143]

A very small proportion of solar power is concentrated solar power. Concentrated solar power may use much more water than gas-fired power. This can be a problem, as this type of solar power needs strong sunlight so is often built in deserts.[144]

Politics

Acceptance of wind and solar facilities in one's community is stronger among U.S. Democrats (blue), while acceptance of nuclear power plants is stronger among U.S. Republicans (red).[145]

Solar production cannot be cut off by geopolitics once installed, unlike oil and gas, which contributes to energy security.[146]

(As of 2022) over 40% of global polysilicon manufacturing capacity is in Xinjiang in China ,[147] which raises concerns about human rights violations (Xinjiang internment camps) as well as supply chain dependency.[148]

See also

References

  1. "Global Solar Atlas". https://globalsolaratlas.info/. 
  2. "Energy Sources: Solar". Department of Energy. https://www.energy.gov/energysources/solar.htm. 
  3. "Power Transition Trends 2022". https://assets.bbhub.io/professional/sites/24/BNEF-Power-Transition-Trends-2022_FINAL.pdf. 
  4. "Executive summary – Renewables 2023 – Analysis" (in en-GB). https://www.iea.org/reports/renewables-2023/executive-summary. 
  5. "Global Electricity Review 2022" (in en-US). 2022-03-29. https://ember-climate.org/insights/research/global-electricity-review-2022/. 
  6. "2023 Levelized Cost Of Energy+" (in en). https://www.lazard.com/research-insights/2023-levelized-cost-of-energyplus/. 
  7. "Executive summary – Renewable Energy Market Update - June 2023 – Analysis" (in en-GB). https://www.iea.org/reports/renewable-energy-market-update-june-2023/executive-summary. 
  8. Norman, Will (2023-06-13). "Through the roof: 49.5% of world's PV additions were rooftop in 2022 – SolarPower Europe" (in en-US). https://www.pv-tech.org/through-the-roof-49-5-of-worlds-pv-additions-were-rooftop-in-2022-solarpower-europe/. 
  9. "Solar PV – Analysis" (in en-GB). https://www.iea.org/reports/solar-pv. 
  10. 10.0 10.1 Goldemberg, José, ed (2000). World energy assessment: energy and the challenge of sustainability (1. print ed.). New York, NY: United Nations Development Programme. ISBN 978-92-1-126126-4. 
  11. 11.0 11.1 11.2 Solar Cells and their Applications Second Edition, Lewis Fraas, Larry Partain, Wiley, 2010, ISBN:978-0-470-44633-1, Section10.2.
  12. Perlin 1999, p. 147
  13. Perlin 1999, pp. 18-20
  14. Corporation, Bonnier (June 1931). "Magic Plates, Tap Sun For Power". Popular Science: 41. https://archive.org/details/bub_gb_9CcDAAAAMBAJ. Retrieved 19 April 2011. 
  15. Perlin 1999, p. 29
  16. Perlin 1999, pp. 29-30,38
  17. Black, Lachlan E. (2016). New Perspectives on Surface Passivation: Understanding the Si-Al2O3 Interface. Springer. p. 13. ISBN 9783319325217. https://core.ac.uk/download/pdf/156698511.pdf. 
  18. Lojek, Bo (2007). History of Semiconductor Engineering. Springer Science & Business Media. pp. 120& 321–323. ISBN 9783540342588. https://archive.org/details/historysemicondu00loje_697. 
  19. Black, Lachlan E. (2016). New Perspectives on Surface Passivation: Understanding the Si-Al2O3 Interface. Springer. ISBN 9783319325217. https://core.ac.uk/download/pdf/156698511.pdf. 
  20. 20.0 20.1 20.2 20.3 20.4 Urbina, Antonio (2022-10-26). "Sustainability of photovoltaic technologies in future net-zero emissions scenarios" (in en). Progress in Photovoltaics: Research and Applications 31 (12): 1255–1269. doi:10.1002/pip.3642. ISSN 1062-7995. "the apparent contradiction that can arise from the fact that large PV plants occupy more land than the relatively compact coal or gas plants is due to the inclusion in the calculation of impacts in land occupation arising from coal mining and oil or gas extraction; if they are included, the impact on land occupation is larger for fossil fuels.". 
  21. "Trends in Photovoltaic Applications Survey report of selected IEA countries between 1992 and 2009, IEA-PVPS". http://www.iea-pvps.org/index.php?id=92&eID=dam_frontend_push&docID=432. 
  22. 22.0 22.1 Budin, Jeremiah (17 January 2024). "Game-Changing Solar Power Technology to Get First US Installation: Valuable Land is almost Completely Preserved". The Cooldown. https://www.thecooldown.com/green-tech/vertical-agrivoltaics-vermont-solar-farm/. 
  23. "Thin-Film Solar Panels | American Solar Energy Society". https://ases.org/thin-film-solar-panels/. 
  24. "How CSP Works: Tower, Trough, Fresnel or Dish" (in en-US). 2018-06-11. https://www.solarpaces.org/how-csp-works/. 
  25. Martin and Goswami (2005), p. 45
  26. Stephen Lacey (6 July 2011). "Spanish CSP Plant with Storage Produces Electricity for 24 Hours Straight". http://www.renewableenergyworld.com/rea/news/article/2011/07/solar-can-be-baseload-spanish-csp-plant-with-storage-produces-electricity-for-24-hours-straight. 
  27. "More countries are turning to this technology for clean energy. It's coming to Australia" (in en-AU). ABC News. 2022-10-05. https://www.abc.net.au/news/2022-10-06/concentrated-solar-thermal-in-queensland-renewable-strategy/101502426. 
  28. "Renewable Electricity – Analysis" (in en-GB). https://www.iea.org/reports/renewable-electricity. 
  29. "Renewable Power Generation Costs in 2021" (in en). 13 July 2022. https://irena.org/publications/2022/Jul/Renewable-Power-Generation-Costs-in-2021. 
  30. Casey, Tina (2022-09-30). "US Energy Dept. Still Holds Torch For Concentrating Solar Power" (in en-US). https://cleantechnica.com/2022/09/30/us-energy-dept-still-holds-torch-for-concentrating-solar-power/. 
  31. Garanovic, Amir (2021-11-10). "World's largest hydro-floating solar hybrid comes online in Thailand" (in en-US). https://www.offshore-energy.biz/worlds-largest-hydro-floating-solar-hybrid-comes-online-in-thailand/. 
  32. Ming, Bo; Liu, Pan; Guo, Yi (2022-01-01), Jurasz, Jakub; Beluco, Alexandre, eds., "Chapter 20 - Operations management of large hydro–PV hybrid power plants: case studies in China" (in en), Complementarity of Variable Renewable Energy Sources (Academic Press): pp. 439–502, ISBN 978-0-323-85527-3, https://www.sciencedirect.com/science/article/pii/B978032385527300008X, retrieved 2022-11-07 
  33. "World's largest wind-solar hybrid complex goes online in India" (in en). https://renewablesnow.com/news/worlds-largest-wind-solar-hybrid-complex-goes-online-in-india-799667/. 
  34. Todorović, Igor (2022-11-04). "China completes world's first hybrid offshore wind-solar power plant" (in en-US). https://balkangreenenergynews.com/china-completes-worlds-first-hybrid-offshore-wind-solar-power-plant/. 
  35. Which?. "Solar panel battery storage" (in en). https://www.which.co.uk/reviews/solar-panels/article/solar-panels/solar-panel-battery-storage-a2AfJ0s5tCyT. 
  36. Brumana, Giovanni; Franchini, Giuseppe; Ghirardi, Elisa; Perdichizzi, Antonio (2022-05-01). "Techno-economic optimization of hybrid power generation systems: A renewables community case study" (in en). Energy 246: 123427. doi:10.1016/j.energy.2022.123427. ISSN 0360-5442. https://www.sciencedirect.com/science/article/pii/S0360544222003309. 
  37. Wang, Zhenni; Wen, Xin; Tan, Qiaofeng; Fang, Guohua; Lei, Xiaohui; Wang, Hao; Yan, Jinyue (2021-08-01). "Potential assessment of large-scale hydro-photovoltaic-wind hybrid systems on a global scale" (in en). Renewable and Sustainable Energy Reviews 146: 111154. doi:10.1016/j.rser.2021.111154. ISSN 1364-0321. https://www.sciencedirect.com/science/article/pii/S1364032121004433. 
  38. Todorović, Igor (2022-07-22). "Portugal, Switzerland launch pumped storage hydropower plants of over 2 GW in total" (in en-US). https://balkangreenenergynews.com/portugal-switzerland-launch-pumped-storage-hydropower-plants-of-over-2-gw-in-total/. 
  39. Bank (ADB), Asian Development. "ADB Partnership Report 2019: Building Strong Partnerships for Shared Progress" (in en-US). https://www.adb.org/multimedia/partnership-report2019/stories/solar-power-meets-hydropower/. 
  40. Merlet, Stanislas; Thorud, Bjørn (2020-11-18). "Floating solar power connected to hydropower might be the future for renewable energy". https://sciencenorway.no/hydropower-opinion-renewable-energy/floating-solar-power-connected-to-hydropower-might-be-the-future-for-renewable-energy/1772215. 
  41. "Share of electricity production from solar". https://ourworldindata.org/grapher/share-electricity-solar. 
  42. "Chart: Solar installations set to break global, US records in 2023". Canary Media. 15 September 2023. https://www.canarymedia.com/articles/solar/chart-solar-installations-set-to-break-global-us-records-in-2023.  For relevant chart, Canary Media credits: "Source: BloombergNEF, September 2023"
  43. Chase, Jenny (5 September 2023). "3Q 2023 Global PV Market Outlook". BloombergNEF. https://about.bnef.com/blog/3q-2023-global-pv-market-outlook/. 
  44. (in en) Scientific American. Munn & Company. 1869-04-10. pp. 227. https://books.google.com/books?id=RmM9AQAAIAAJ&q=carbonic+oxide. 
  45. "Photovoltaic Dreaming 1875--1905: First Attempts At Commercializing PV - CleanTechnica". 31 December 2014. https://cleantechnica.com/2014/12/31/photovoltaic-dreaming-first-attempts-commercializing-pv/. 
  46. Butti and Perlin (1981), p. 63, 77, 101
  47. ”The Bell Solar Battery” (advertisement). Audio, July 1964, 15.
  48. "Vanguard I The World's Oldest Satellite Still in Orbit". http://code8100.nrl.navy.mil/about/heritage/vanguard.htm.  This article incorporates text from this source, which is in the public domain.
  49. 49.0 49.1 49.2 Levy, Adam (13 January 2021). "The dazzling history of solar power" (in en). Knowable Magazine. doi:10.1146/knowable-011321-1. https://knowablemagazine.org/article/technology/2021/the-dazzling-history-solar-power. Retrieved 25 March 2022. 
  50. "The Solar Energy Book-Once More." Mother Earth News 31:16–17, Jan. 1975
  51. Butti and Perlin (1981), p. 249
  52. Yergin (1991), pp. 634, 653–673
  53. "Chronicle of Fraunhofer-Gesellschaft". Fraunhofer-Gesellschaft. http://www.fraunhofer.de/EN/company/profile/chronicle/1972-1982.jsp. 
  54. Solar: photovoltaic: Lighting Up The World retrieved 19 May 2009
  55. Colville, Finlay (30 January 2017). "Top-10 solar cell producers in 2016". PV-Tech. http://www.pv-tech.org/editors-blog/45754. 
  56. Ball, Jeffrey (2017-03-21). "The New Solar System - Executive Summary". https://www-cdn.law.stanford.edu/wp-content/uploads/2017/03/Executive-Summary-The-New-Solar-System-1.pdf. 
  57. "Levelized Cost Of Energy, Levelized Cost Of Storage, and Levelized Cost Of Hydrogen" (in en). http://www.lazard.com/perspective/levelized-cost-of-energy-levelized-cost-of-storage-and-levelized-cost-of-hydrogen/. 
  58. "World Installs a Record 168 GW of Solar Power in 2021, enters Solar Terawatt Age - SolarPower Europe". https://www.solarpowereurope.org/press-releases/world-installs-a-record-168-gw-of-solar-power-in-2021-enters-solar-terawatt-age. 
  59. McDonnell, Tim (2022-08-29). "Soaring fossil fuel subsidies are holding back clean energy" (in en). https://qz.com/soaring-fossil-fuel-subsidies-are-holding-back-clean-en-1849467945. 
  60. 60.0 60.1 "Utility-scale solar PV: From big to biggest". Det Norske Veritas. https://www.dnv.com/feature/utility-scale-solar.html. 
  61. 61.0 61.1 "Renewable electricity – Renewables 2022 – Analysis" (in en-GB). https://www.iea.org/reports/renewables-2022/renewable-electricity. 
  62. Cork, University College. "Assessing global electricity generation potential from rooftop solar photovoltaics" (in en). https://techxplore.com/news/2021-10-global-electricity-potential-rooftop-solar.html. 
  63. What is peak demand? , Energex.com.au website.
  64. Nian, Victor; Mignacca, Benito; Locatelli, Giorgio (2022-08-15). "Policies toward net-zero: Benchmarking the economic competitiveness of nuclear against wind and solar energy" (in en). Applied Energy 320: 119275. doi:10.1016/j.apenergy.2022.119275. ISSN 0306-2619. Bibcode2022ApEn..32019275N. https://www.sciencedirect.com/science/article/pii/S0306261922006328. 
  65. "EU expects to raise €140bn from windfall tax on energy firms" (in en). 2022-09-14. https://www.theguardian.com/business/2022/sep/14/eu-windfall-tax-energy-fossil-fuel-firms. 
  66. "The EU's energy windfall tax gives UK ministers a yardstick for their talks" (in en). 2022-09-14. https://www.theguardian.com/business/nils-pratley-on-finance/2022/sep/14/eu-energy-windfall-tax-uk-government-negotiations. 
  67. "'Renewables' power ahead to become the world's cheapest source of energy in 2020" (in en). 5 July 2021. https://www.weforum.org/agenda/2021/07/renewables-cheapest-energy-source/. 
  68. "Levelized Cost Of Energy, Levelized Cost Of Storage, and Levelized Cost Of Hydrogen" (in en). http://www.lazard.com/perspective/levelized-cost-of-energy-levelized-cost-of-storage-and-levelized-cost-of-hydrogen/. 
  69. "Saudi Arabia signed Power Purchase Agreement for 2,970MW Solar PV Projects" (in en). 8 April 2021. https://www.saudigulfprojects.com/2021/04/saudi-arabia-signed-power-purchase-agreement-for-2970mw-solar-pv-projects/. 
  70. Timilsina, Govinda R.; Kurdgelashvili, Lado; Narbel, Patrick A. (2012-01-01). "Solar energy: Markets, economics and policies" (in en). Renewable and Sustainable Energy Reviews 16 (1): 449–465. doi:10.1016/j.rser.2011.08.009. ISSN 1364-0321. https://www.sciencedirect.com/science/article/pii/S1364032111004199. 
  71. "Solar Shingles Vs. Solar Panels: Cost, Efficiency & More (2021)" (in en). 2021-08-08. https://www.ecowatch.com/solar-roof-shingles-2654521594.html. 
  72. "Solar Farms: What Are They and How Much Do They Cost? | EnergySage" (in en-US). 2021-06-18. https://news.energysage.com/solar-farms-start-one/. 
  73. 73.0 73.1 Bogdanov, Dmitrii; Ram, Manish; Aghahosseini, Arman; Gulagi, Ashish; Oyewo, Ayobami Solomon; Child, Michael; Caldera, Upeksha; Sadovskaia, Kristina et al. (2021-07-15). "Low-cost renewable electricity as the key driver of the global energy transition towards sustainability" (in en). Energy 227: 120467. doi:10.1016/j.energy.2021.120467. ISSN 0360-5442. 
  74. "Is a solar future inevitable?". https://www.exeter.ac.uk/media/universityofexeter/globalsystemsinstitute/documents/GSI_working_papers_solar_August.pdf. 
  75. "Daytime Cloud Fraction Coast lines evident". http://slideplayer.com/slide/7652063/25/images/3/Daytime+Cloud+Fraction+Coast+lines+evident.jpg. 
  76. "Sunshine". http://www.econet.org.uk/weather/sun.html. 
  77. "Living in the Sun Belt : The Solar Power Potential for the Middle East". 27 July 2016. http://solarone.me/2016/07/27/living-in-the-sun-belt-the-solar-power-potential-for-the-middle-east/. 
  78. "Money saved by producing electricity from PV and Years for payback". https://docs.google.com/spreadsheet/pub?key=0Ahl2afL-jL0BdEVGU3dsbllfTzlxMEV0aTNqT0d5Nnc&output=html. 
  79. Stetz, T; Marten, F; Braun, M (2013). "Improved Low Voltage Grid-Integration of Photovoltaic Systems in Germany". IEEE Transactions on Sustainable Energy 4 (2): 534–542. doi:10.1109/TSTE.2012.2198925. Bibcode2013ITSE....4..534S. 
  80. 81.0 81.1 81.2 81.3 Salpakari, Jyri; Lund, Peter (2016). "Optimal and rule-based control strategies for energy flexibility in buildings with PV". Applied Energy 161: 425–436. doi:10.1016/j.apenergy.2015.10.036. Bibcode2016ApEn..161..425S. https://aaltodoc.aalto.fi/handle/123456789/25788. 
  81. Fitzgerald, Garrett; Mandel, James; Morris, Jesse; Touati, Hervé (2015). The Economics of Battery Energy Storage (Report). Rocky Mountain Institute. http://www.rmi.org/Content/Files/RMI-TheEconomicsOfBatteryEnergyStorage-FullReport-FINAL.pdf. 
  82. "The Value of Electricity Reliability: Evidence from Battery Adoption" (in en-US). https://www.rff.org/publications/working-papers/the-value-of-electricity-reliability-evidence-from-battery-adoption/. 
  83. 84.0 84.1 "Germany boosts renewables with "biggest energy policy reform in decades"" (in en). 2022-04-06. https://www.cleanenergywire.org/news/germany-boosts-renewables-biggest-energy-policy-reform-decades. 
  84. "Indigenizing Solar Manufacturing: Charting the Course to a Solar Self-Sufficient India - Saur Energy International". https://www.saurenergy.com/solar-energy-articles/indigenizing-solar-manufacturing-charting-the-course-to-a-solar-self-sufficient-india. 
  85. "Renewable power incentives". https://www.energy.gov.au/rebates/renewable-power-incentives. 
  86. China Racing Ahead of America in the Drive to Go Solar.
  87. "Power & Energy Technology - IHS Technology". http://www.solarbuzz.com/FastFactsGermany.htm. 
  88. Ravi Shankar (Jul 20, 2022). "What is the solar rooftop subsidy scheme/yojana? - Times of India" (in en). https://timesofindia.indiatimes.com/business/faqs/miscellaneous/what-is-the-solar-rooftop-subsidy-scheme/yojana/articleshow/93010587.cms. 
  89. "Net Metering". http://www.dsireusa.org/solar/solarpolicyguide/?id=17. 
  90. "Net Metering and Interconnection - NJ OCE Web Site". http://www.njcleanenergy.com/renewable-energy/programs/net-metering-and-interconnection. 
  91. Mentzel, Dashal (2023-10-25). "Partnership brings benefits of community solar to Vernon County" (in en). https://www.weau.com/2023/10/25/partnership-brings-benefits-community-solar-vernon-county/. 
  92. "Community Solar Basics" (in en). https://www.energy.gov/eere/solar/community-solar-basics. 
  93. Philipp, Jennifer (2022-09-07). "Solar Power in Africa on the Rise" (in en-US). https://www.borgenmagazine.com/solar-power-in-africa/. 
  94. Busch, Marc L. (2022-09-02). "The mystery of India's new solar tariffs" (in en-US). https://thehill.com/opinion/international/3625976-the-mystery-of-indias-new-solar-tariffs/. 
  95. Wright, matthew; Hearps, Patrick; et al. Australian Sustainable Energy: Zero Carbon Australia Stationary Energy Plan , Energy Research Institute, University of Melbourne, October 2010, p. 33. Retrieved from BeyondZeroEmissions.org website.
  96. Palgrave, Robert (1 December 2008). "Innovation in CSP". Renewable Energy Focus (Elsevier) 9 (6): 44–49. doi:10.1016/S1755-0084(08)70066-8. http://www.renewableenergyfocus.com/view/3272/innovation-in-concentrating-thermal-solar-power-csp/. 
  97. Ray Stern (10 October 2013). "Solana: 10 Facts You Didn't Know About the Concentrated Solar Power Plant Near Gila Bend". Phoenix New Times. http://blogs.phoenixnewtimes.com/valleyfever/2013/10/solana_10_facts_you_didnt_know.php. 
  98. Carr (1976), p. 85
  99. Ruggles, Tyler H.; Caldeira, Ken (2022-01-01). "Wind and solar generation may reduce the inter-annual variability of peak residual load in certain electricity systems" (in en). Applied Energy 305: 117773. doi:10.1016/j.apenergy.2021.117773. ISSN 0306-2619. Bibcode2022ApEn..30517773R. 
  100. "Advantages of Using Molten Salt". Sandia National Laboratory. http://www.sandia.gov/Renewable_Energy/solarthermal/NSTTF/salt.htm. 
  101. "PV Systems and Net Metering". Department of Energy. http://www1.eere.energy.gov/solar/net_metering.html. 
  102. Parimita Mohanty; Tariq Muneer; Mohan Kolhe (30 October 2015). Solar Photovoltaic System Applications: A Guidebook for Off-Grid Electrification. Springer. p. 91. ISBN 978-3-319-14663-8. https://books.google.com/books?id=37zYCgAAQBAJ. Retrieved 22 August 2022. 
  103. Weidong Xiao (24 July 2017). Photovoltaic Power System: Modeling, Design, and Control. John Wiley & Sons. p. 288. ISBN 978-1-119-28034-7. https://books.google.com/books?id=DEHCDgAAQBAJ. Retrieved 22 August 2022. 
  104. "The Economic Viability of Battery Storage for Residential Solar Photovoltaic Systems - A Review and a Simulation Model". ETH Zürich, Harvard University. July 2014. https://www.researchgate.net/publication/264239770. 
  105. Gerdes, Justin. "Solar Energy Storage About To Take Off In Germany and California" (in en). Forbes. https://www.forbes.com/sites/justingerdes/2013/07/18/solar-energy-storage-about-to-take-off-in-germany-and-california/. 
  106. "Tesla launches Powerwall home battery with aim to revolutionize energy consumption". Associated Press. 1 May 2015. http://www.cbc.ca/news/business/tesla-launches-powerwall-home-battery-with-aim-to-revolutionize-energy-consumption-1.3056587. 
  107. Kaspar, Frank; Borsche, Michael; Pfeifroth, Uwe; Trentmann, Jörg; Drücke, Jaqueline; Becker, Paul (2019-07-02). "A climatological assessment of balancing effects and shortfall risks of photovoltaics and wind energy in Germany and Europe" (in English). Advances in Science and Research (Copernicus GmbH) 16: 119–128. doi:10.5194/asr-16-119-2019. Bibcode2019AdSR...16..119K. https://asr.copernicus.org/articles/16/119/2019/. 
  108. "Pumped Hydro Storage". Electricity Storage Association. http://www.electricitystorage.org/tech/technologies_technologies_pumpedhydro.htm. 
  109. Parkinson, Giles (2022-10-23). ""We don't need solar technology breakthroughs, we just need connections"" (in en-AU). https://reneweconomy.com.au/we-dont-need-solar-technology-breakthroughs-we-just-need-connections/. 
  110. Vorrath, Sophie (2022-10-17). "MPower gets green light to connect solar battery projects, cash in on negative pricing" (in en-AU). https://reneweconomy.com.au/mpower-gets-green-light-to-connect-solar-and-battery-projects-cash-in-on-negative-pricing/. 
  111. Nyenah, Emmanuel; Sterl, Sebastian; Thiery, Wim (2022-05-01). "Pieces of a puzzle: solar-wind power synergies on seasonal and diurnal timescales tend to be excellent worldwide" (in en). Environmental Research Communications 4 (5): 055011. doi:10.1088/2515-7620/ac71fb. ISSN 2515-7620. Bibcode2022ERCom...4e5011N. 
  112. "Hybrid Wind and Solar Electric Systems". United States Department of Energy. 2 July 2012. http://energy.gov/energysaver/articles/hybrid-wind-and-solar-electric-systems. 
  113. Converse, Alvin O. (2012). "Seasonal Energy Storage in a Renewable Energy System". Proceedings of the IEEE 100 (2): 401–409. doi:10.1109/JPROC.2011.2105231. https://pdfs.semanticscholar.org/aee9/8815cc874423e67af5fd9bf8eac612b56ea6.pdf. Retrieved 30 April 2018. 
  114. "Solar energy and the environment - U.S. Energy Information Administration (EIA)". https://www.eia.gov/energyexplained/solar/solar-energy-and-the-environment.php#:~:text=Solar%20energy%20technologies%20and%20power,larger%20effects%20on%20the%20environment.. 
  115. Anctil, Annick (June 2021). "Comparing the carbon footprint of monocrystalline silicon solar modules manufactured in China and the United States". 2021 IEEE 48th Photovoltaic Specialists Conference (PVSC). pp. 1–3. doi:10.1109/PVSC43889.2021.9518632. ISBN 978-1-6654-1922-2. https://ieeexplore.ieee.org/document/9518632. 
  116. 117.0 117.1 "Solar power's potential limited unless "you do everything perfectly" says solar scientist" (in en). 2022-09-21. https://www.dezeen.com/2022/09/21/wim-c-sinke-interview-solar-power-limitations/. 
  117. "Aging Gracefully: How NREL Is Extending the Lifetime of Solar Modules" (in en). https://www.nrel.gov/news/features/2022/aging-gracefully-how-nrel-is-extending-the-lifetime-of-solar-modules.html. 
  118. Zhu, Xiaonan; Wang, Shurong; Wang, Lei (April 2022). "Life cycle analysis of greenhouse gas emissions of China's power generation on spatial and temporal scale" (in en). Energy Science & Engineering 10 (4): 1083–1095. doi:10.1002/ese3.1100. ISSN 2050-0505. Bibcode2022EneSE..10.1083Z. 
  119. "Carbon Neutrality in the UNECE Region: Integrated Life-cycle Assessment of Electricity Sources". p. 49. https://unece.org/sites/default/files/2022-04/LCA_3_FINAL%20March%202022.pdf. 
  120. 121.0 121.1 "Life Cycle Greenhouse Gas Emissions from Solar Photovoltaics". https://www.nrel.gov/docs/fy13osti/56487.pdf. 
  121. Mehedi, Tanveer Hassan; Gemechu, Eskinder; Kumar, Amit (2022-05-15). "Life cycle greenhouse gas emissions and energy footprints of utility-scale solar energy systems" (in en). Applied Energy 314: 118918. doi:10.1016/j.apenergy.2022.118918. ISSN 0306-2619. Bibcode2022ApEn..31418918M. https://www.sciencedirect.com/science/article/pii/S0306261922003403. 
  122. "Life Cycle Assessment Harmonization" (in en). https://www.nrel.gov/analysis/life-cycle-assessment.html. 
  123. 124.0 124.1 "How does the land use of different electricity sources compare?". https://ourworldindata.org/land-use-per-energy-source. 
  124. Van Zalk, John; Behrens, Paul (2018-12-01). "The spatial extent of renewable and non-renewable power generation: A review and meta-analysis of power densities and their application in the U.S." (in en). Energy Policy 123: 83–91. doi:10.1016/j.enpol.2018.08.023. ISSN 0301-4215. 
  125. van de Ven, Dirk-Jan; Capellan-Peréz, Iñigo; Arto, Iñaki; Cazcarro, Ignacio; de Castro, Carlos; Patel, Pralit; Gonzalez-Eguino, Mikel (2021-02-03). "The potential land requirements and related land use change emissions of solar energy" (in en). Scientific Reports 11 (1): 2907. doi:10.1038/s41598-021-82042-5. ISSN 2045-2322. PMID 33536519. Bibcode2021NatSR..11.2907V. 
  126. Diab, Khaled. "There are grounds for concern about solar power" (in en). https://www.aljazeera.com/opinions/2021/4/7/there-are-grounds-for-concern-about-solar-power. 
  127. Staff, Carbon Brief (2022-08-25). "Factcheck: Is solar power a 'threat' to UK farmland?" (in en). https://www.carbonbrief.org/factcheck-is-solar-power-a-threat-to-uk-farmland/. 
  128. Oda, Shoko (2022-05-21). "Electric farms in Japan are using solar power to grow profits and crops" (in en-US). https://www.japantimes.co.jp/news/2022/05/21/business/electric-farms-japan-solar/. 
  129. Gerretsen, Isabelle. "The floating solar panels that track the Sun" (in en). https://www.bbc.com/future/article/20221116-the-floating-solar-panels-that-track-the-sun. 
  130. Pollard, Jim (2023-05-29). "Wind Power Body Plans to Provide a Third of Japan's Electricity" (in en-US). https://www.asiafinancial.com/wind-power-body-plans-to-provide-a-third-of-japans-electricity. 
  131. "Clean power in South Korea". https://climateanalytics.org/media/clean_power_in_south_korea.pdf. 
  132. Dunnett, Sebastian; Holland, Robert A.; Taylor, Gail; Eigenbrod, Felix (2022-02-08). "Predicted wind and solar energy expansion has minimal overlap with multiple conservation priorities across global regions" (in en). Proceedings of the National Academy of Sciences 119 (6). doi:10.1073/pnas.2104764119. ISSN 0027-8424. PMID 35101973. Bibcode2022PNAS..11904764D. 
  133. Rabaia, Malek Kamal Hussien; Abdelkareem, Mohammad Ali; Sayed, Enas Taha; Elsaid, Khaled; Chae, Kyu-Jung; Wilberforce, Tabbi; Olabi, A. G. (2021). "Environmental impacts of solar energy systems: A review" (in en). Science of the Total Environment 754: 141989. doi:10.1016/j.scitotenv.2020.141989. ISSN 0048-9697. PMID 32920388. Bibcode2021ScTEn.754n1989R. https://www.sciencedirect.com/science/article/pii/S0048969720355182. 
  134. "Renewable revolution will drive demand for critical minerals" (in en-AU). 2021-05-05. https://reneweconomy.com.au/renewable-revolution-will-drive-demand-for-critical-minerals/. 
  135. "Clean energy demand for critical minerals set to soar as the world pursues net zero goals - News" (in en-GB). https://www.iea.org/news/clean-energy-demand-for-critical-minerals-set-to-soar-as-the-world-pursues-net-zero-goals. 
  136. "Used Solar Panels Are Powering the Developing World". Bloomberg.com. 25 August 2021. https://www.bloomberg.com/opinion/articles/2021-08-25/used-solar-panels-are-powering-the-developing-world. 
  137. US EPA, OLEM (2021-08-23). "End-of-Life Solar Panels: Regulations and Management" (in en). https://www.epa.gov/hw/end-life-solar-panels-regulations-and-management. 
  138. "The Proposed Legal Framework On Responsibility Of Producers And..." (in en-us). https://www.roedl.com/insights/renewable-energy/2021/november/proposed-legal-framework-responsibility-producers-importers-solar-panels. 
  139. Majewski, Peter; Al-shammari, Weam; Dudley, Michael; Jit, Joytishna; Lee, Sang-Heon; Myoung-Kug, Kim; Sung-Jim, Kim (2021-02-01). "Recycling of solar PV panels- product stewardship and regulatory approaches" (in en). Energy Policy 149: 112062. doi:10.1016/j.enpol.2020.112062. ISSN 0301-4215. https://www.sciencedirect.com/science/article/pii/S0301421520307734. 
  140. Gürtürk, Mert (2019-03-15). "Economic feasibility of solar power plants based on PV module with levelized cost analysis" (in en). Energy 171: 866–878. doi:10.1016/j.energy.2019.01.090. ISSN 0360-5442. https://www.sciencedirect.com/science/article/pii/S0360544219301008. 
  141. Cross, Jamie; Murray, Declan (2018-10-01). "The afterlives of solar power: Waste and repair off the grid in Kenya" (in en). Energy Research & Social Science 44: 100–109. doi:10.1016/j.erss.2018.04.034. ISSN 2214-6296. 
  142. Jang, Esther; Barela, Mary Claire; Johnson, Matt; Martinez, Philip; Festin, Cedric; Lynn, Margaret; Dionisio, Josephine; Heimerl, Kurtis (2018-04-19). "Crowdsourcing Rural Network Maintenance and Repair via Network Messaging". Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems. CHI '18. New York, NY, US: Association for Computing Machinery. pp. 1–12. doi:10.1145/3173574.3173641. ISBN 978-1-4503-5620-6. https://doi.org/10.1145/3173574.3173641. 
  143. "Water consumption solution for efficient concentrated solar power | Research and Innovation" (in en). https://ec.europa.eu/research-and-innovation/en/projects/success-stories/all/water-consumption-solution-efficient-concentrated-solar-power. 
  144. Chiu, Allyson; Guskin, Emily; Clement, Scott (3 October 2023). "Americans don't hate living near solar and wind farms as much as you might think". The Washington Post. https://www.washingtonpost.com/climate-solutions/2023/10/03/solar-panels-wind-turbines-nimby/. 
  145. "Making solar a source of EU energy security | Think Tank | European Parliament" (in en). https://www.europarl.europa.eu/thinktank/en/document/EPRS_ATA(2022)733587. 
  146. Blunt, Katherine; Dvorak, Phred (2022-08-09). "WSJ News Exclusive | U.S. Solar Shipments Are Hit by Import Ban on China's Xinjiang Region" (in en-US). The Wall Street Journal. ISSN 0099-9660. https://www.wsj.com/articles/u-s-solar-shipments-are-hit-by-import-ban-on-chinas-xinjiang-region-11660037401. 
  147. "Fears over China's Muslim forced labor loom over EU solar power" (in en-US). 2021-02-10. https://www.politico.eu/article/xinjiang-china-polysilicon-solar-energy-europe/. 

Bibliography

Further reading

  • Sivaram, Varun (2018). Taming the Sun: Innovation to Harness Solar Energy and Power the Planet. Cambridge, MA: MIT Press. ISBN 978-0-262-03768-6. 

External links






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