PHOTOVOLTAICS


Photovoltaic 'tree' in Styria, Austria

'Photovoltaics', or 'PV' for short, is a solar power technology that uses solar cells or solar photovoltaic arrays to convert light from the sun directly into electricity. Photovoltaics is also the field of study relating to this technology and there are many research institutes devoted to work on photovoltaics.[1][2] The manufacture of photovoltaic cells has expanded dramatically in recent years.[3][4][5] Total nominal 'peak power' of installed solar PV arrays was around 3,700 MW as of the end of 2005, a 42% increase for the year,[6] and most of this consisted of grid-connected applications. Such installations may be ground-mounted (and sometimes integrated with farming and grazing)[7] or building integrated.[8] Financial incentives, such as preferential feed-in tariffs for solar-generated electricity and net metering, have supported solar PV installations in many countries including Germany, Japan, and the United States.[3]

Contents
Current development
Worldwide installed photovoltaic totals
Applications of PV
PV power stations
PV in buildings
PV in transport
Economics of PV
Power costs
Grid parity
Financial incentives
Environmental impacts
Greenhouse gases
Cadmium
Energy returned on energy invested
Photovoltaics companies
Photovoltaic Industry Associations
Photovoltaics research institutes
See also
References
External links

Current development


Photovoltaic cells produce electricity directly from sunlight

Average solar irradiance, watts per square metre. The small black dots show the area of solar panels needed to generate all of the worlds energy using 8% eff. PVs.

Map of solar electricity potential in Europe

Photovoltaics, or PV for short, is a technology in which light is converted into electrical power. It is best known as a method for generating solar power by using solar cells packaged in photovoltaic modules, often electrically connected in multiples as solar photovoltaic arrays to convert energy from the sun into electricity.
''Photovoltaics'' can refer to the field of study relating to this technology, and the term ''photovoltaic'' denotes the unbiased operating mode of a photodiode in which current through the device is entirely due to the transduced light energy. Virtually all photovoltaic devices are some type of photodiode.
Solar cells produce direct current electricity from light, which can be used to power equipment or to recharge a battery. The first practical application of photovoltaics was to power orbiting satellites and other spacecraft and pocket calculators, but today the majority of photovoltaic modules are used for grid connected power generation. In this case an inverter is required to convert the DC to AC. There is a smaller market for off grid power for remote dwellings, roadside emergency telephones, remote sensing, and cathodic protection of pipelines.
Cells require protection from the environment and are packaged usually behind a glass sheet. When more power is required than a single cell can deliver, cells are electrically connected together to form photovoltaic modules, or solar panels. A single module is enough to power an emergency telephone, but for a house or a power plant the modules must be arranged in arrays. Although the selling price of modules is still too high to compete with grid electricity in most places, significant financial incentives in Japan and then Germany triggered a huge growth in demand, followed quickly by production. Although module prices rose and plateaued[10], it is expected that costs and prices will fall to 'grid parity' in many places around 2010.
Many corporations and institutions are currently developing ways to increase the practicality of solar power. While private companies conduct much of the research and development on solar energy, colleges and universities and institutes also work on solar-powered devices. Most research is being carried out in Germany, Japan, USA and Australia. Solar power has received less research funding than other sources, but is seen as the most likely largest source of electricity in 15 years in the United States. [11]
The most important issue with solar panels is capital cost (installation and materials). Because of much increased demand, the price of silicon has risen and shortages occurred in 2005 and 2006. Newer alternatives to standard crystalline silicon modules including casting wafers instead of sawing [12], thin film (CdTe[13], CIGS[14], amorphous Si[15], microcrystalline Si), concentrator modules, 'Sliver' cells, and continuous printing processes. Due to economies of scale solar panels get less costly as people use and buy more — as manufacturers increase production to meet demand, the cost and price is expected to drop in the years to come. As of early 2006, the average cost per installed watt for a residential sized system was about USD 6.50 to USD 7.50, including panels, inverters, mounts, and electrical items.[16] In 2007 investors began offering free solar panel installation in return for a 25 year contract to purchase electricity at a fixed price, normally set at or below current electric rates.[1][17][18]
A less common form of the technologies is thermophotovoltaics, in which the thermal radiation from some hot body other than the sun is utilized. Photovoltaic devices are also used to produce electricity in optical wireless power transmission.

Worldwide installed photovoltaic totals


The CIS Tower, Manchester, England, was clad in PV panels at a cost of £5.5 million. It started feeding electricity to the national grid in November 2005.

The three leading countries (Japan, Germany and the USA) represent 90% of the total worldwide PV installations, although this is subject to change with both Portugal and Australia independently announcing construction of the world's largest installations, and will continue to change as even larger facilities are constructed.
Photovoltaic power capacity is measured as maximum power output under standardized test conditions in "Wp" (watts peak).[19] (actual peak power may exceed this nominal peak power). Solar photovoltaic arrays have capacity factors of around 19%, which is lower than many other industrial sources of electricity.[20][21][22] Therefore the 2005 installed base peak output would have provided an average output of approximately 703 MW (19% × 3,700). This represented 0.04 percent of global demand at the time.[23]
Germany was the fastest growing major PV market in the world in 2005. In 2005, 837 MWp of PV were installed. The German PV industry generates over 10,000 jobs in production, distribution and installation. Over 90% of solar PV installations are in grid-tied applications in Germany. The balance is off-grid (or stand alone) systems.[3]


'Installed PV Power as of the end of 2005[25]'
#CountryPV Capacity [kWp]
CumulativeInstalled in 2005
Off GridOn GridTotalTotal/capita †On GridTotal
1Germany 29,000 1,400,000 1,429,000 0.01732 632,000 635,000
2Japan 87,057 1,334,851 1,421,908 0.01113 287,105 289,917
3United States 233,000 246,000 479,000 0.00162 70,000 103,000
4Australia 41,841 8,740 60,581 0.00297 1,980 8,280
5Spain 15,800 41,600 57,400 0.00132 18,600 20,400
6Netherlands 4,919 45,857 50,776 0.00312 1,547 1,697
7Italy
★ 12,300

★ 15,200
37,500 0.00064 6,500 6,800
8France 20,076 12,967 33,043 0.00054 5,900 7,020
9Switzerland 3,250 23,800 27,050 0.00366 3,800 3,950
10Austria 2,895 21,126 24,021 0.00293 2,711 2,961
11Mexico 18,654 40 18,694 0.00017 30 513
12Canada 15,622 1,124 16,746 0.00052 612 2,862
13South Korea 5,663 9,358 15,021 0.00031 6,183 6,487
14United Kingdom 924 9,953 10,877 0.00018 2,567 2,732
15Norway 7,177 75 7,252 0.00158 0 362
16Sweden 3,983 254 4,237 0.00047 0 371
17Denmark 295 2,355 2,650 0.00049 320 360
18Israel 1,019 25 1,044 0.00015 2 158
Estimated Total 513,475 3,183,325 3,696,800 1,039,917 1,092,851

: 14 - 224 kWp/capita is recommended, as consumption may reach up to 14 - 56 kW·h/capita·day when distributed across residential, commercial & industrial zones and mass transit.
:
Original source gives these individual numbers for Italy and totals them to 37,500 kW. The 2004 reported total was 30,700 kW.[26] With new installations of 6,800 kW, this would give the reported 37,500 kW.
'Installed PV Power as of the end of 2006'
#CountryPV Capacity (MWp)
CumulativeInstalled in 2006
Off gridOn gridTotalOff gridOn gridTotal
1 Germany 32 3,031 3,063 3 1,150 1,153
2 Japan
3 United States 275 340 615 60 100 160
4 Spain 15 103 118 1 59 60
5 Australia
6 Italy 13 45 58 0 11 11
7 Netherlands 5 46 51 0.2 0.3 0.4
8 South Korea 36 21
9 France 20.4 12.3 32.7 0.3 6.1 6.4
10 Austria 3.1 25.9 29 0.2 4.8 5
11 Luxembourg 0 23.6 23.6 0 0.04 0.04
12 United Kingdom 1.1 12.6 13.6 0.2 2.6 2.8
13 Greece 5.1 1.6 6.7 1.0 0.2 1.2
14 Sweden 4.2 0.7 4.9 0.2 0.4 0.6
15 Belgium 0.1 4.1 4.2 0 2.1 2.1
16 Finland 3.8 0.3 4.1 0 0.06 0.06
17 Portugal 2.7 0.8 3.5 0.25 0.23 0.48
18 Denmark 0.3 2.6 2.9 0.03 0.2 0.23
19 Cyprus 0.45 0.53 0.98 0.08 0.44 0.52
20 Czech Rep. 0.8 0.3
21 Poland 0.4 0.1
22 Slovenia 0.4 0.2
23 Ireland 0.3 <0.1
24 Hungary 0.2 <0.1
25 Slovakia 0.1 <0.1
26 Malta 0.1 <0.1
27 Lithuania 0.1 <0.1
#CountryOff gridOn gridTotalOff gridOn gridTotal
CumulativeInstalled in 2006
PV Capacity (MWp)

Source: Eurobserv'er' / SEIA / PV Power / [27]

Applications of PV


PV power stations

The Table below provides details of some of the largest photovoltaic plants in the world. As shown, Germany has a 10 MW photovoltaic system in Pocking, and a 12 MW plant in Arnstein, with a 40 MW power station planned for Muldentalkreis. Portugal has an 11 MW plant in Serpa and a 62 MW power station is planned for Moura. A 20 MW power plant is also planned for Beneixama, Spain. The photovoltaic power station proposed for Australia will use heliostat concentrator technology and will not come into service until 2010. It is expected to have a capacity of 154 MW when it is completed in 2013.[28]
'World's largest PV power plants[29]'
DC Peak Power Location Description GW·h/year Coordinates
154 MW

Mildura/Swan Hill, Australia[30] Heliostat Concentrator Photovoltaic technology
(see Solar power station in Victoria)
n.a. n.a.
62 MW

Moura, Portugal[31] [32] BP, Yingli? 88 n.a.
40 MW
Muldentalkreis, Germany[33] [34] 550,000 thin-film modules (First Solar) (see Waldpolenz Solar Park) 40
20 MW

Beneixama, Spain[35][36][37] Tenesol, Aleo and Solon solar modules with Q-Cells cells 30
12 MW Arnstein, Germany[38] 1408 SOLON mover
(see Erlasee Solar Park)
14 n.a.
11 MW Serpa, Portugal[39] 52,000 solar modules
(see Serpa solar power plant)
n.a. n.a.
10 MW Pocking, Germany 57,912 solar modules
(see Pocking Solar Park)
11.5 n.a.
9.5 MW Milagro, Spain see Monte Alto photovoltaic power plant 14 n.a.

:
Project finish date: 2009;

Under construction, as of spring 2007
PV in buildings

Main articles: Building-integrated photovoltaic

Photovoltaic solar panels on a house roof.

Building-integrated photovoltaics (BIPV) are increasingly incorporated into new domestic and industrial buildings as a principal or ancillary source of electrical power,[40] and are one of the fastest growing segments of the photovoltaic industry.[41] Typically, an array is incorporated into the roof or walls of a building, and roof tiles with integrated PV cells can now be purchased. Arrays can also be into existing buildings; in this case they are usually fitted on top of the existing roof structure. Alternatively, an array can be located separately from the building but connected by cable to supply power for the building.
Where a building is at a considerable distance from the public electricity supply (or grid) - in remote or mountainous areas – PV may be the preferred possibility for generating electricity, or PV may be used together with wind, diesel generators and/or hydroelectric power. In such off-grid circumstances batteries are usually used to store the electric power.
PV in transport

Main articles: Photovoltaics in transport

PV has traditionally been used for auxiliary power in space. PV is rarely used to provide motive power in transport applications, but is being used increasingly to provide auxiliary power in boats and cars.
There is a synergy between the distributed nature of the transportation grid and the distributed energy of sunshine and wind. Several versions of [42] have integrated solar as a means of protecting access to power in the event of brown-outs and black-outs. Unlike the solar race cars, carrying 12 square meters of solar collectors, these fixed rail systems have vast more collection capacity.

Economics of PV


US average daily solar energy insolation received by a latitude tilt photovoltaic cell.

Power costs

The PV industry is beginning to adopt levelized cost of energy as the unit of cost. The results of a sample calculation can be found on pp52, 53 of the 2007 DOE report describing the plans for solar power 2007-2011 [3]. For a 10MW plant in Phoenix, AZ, the LCOE is estimated at $0.15 to 0.22/kWh.
The table below is a pure mathematical calculation. It illustrates the calculated total cost in US cents per kWh of electricity generated by a photovoltaic system as function of the investment cost and the efficiency, assuming some accounting parameters such as cost of capital and depreciation period. The row headings on the left show the total cost, per peak kilowatt (kWp), of a photovoltaic installation. The column headings across the top refer to the annual energy output in kWh expected from each installed kWp. This varies by geographic region because the average insolation depends on the average cloudiness and the thickness of atmosphere traversed by the sunlight. It also depends on the path of the sun relative to the panel and the horizon.
Panels are usually mounted at an angle based on latitude, and often they are adjusted seasonally to meet the changing solar declination. Solar tracking can also be utilized to access even more perpendicular sunlight, thereby raising the total energy output. The calculated values in the table reflect the total cost in cents per kWh produced. They assume a 10% total capital cost (for instance 4% interest rate, 1% operating and maintenance cost, and depreciation of the capital outlay over 20 years). (Normally, photovoltaic modules have a 25 year warranty, but they should be fully functional even after 30-40 years.)
20 years 2400
kWh/kWp y
2200
kWh/kWp y
2000
kWh/kWp y
1800
kWh/kWp y
1600
kWh/kWp y
1400
kWh/kWp y
1200
kWh/kWp y
1000
kWh/kWp y
800
kWh/kWp y
200 $/kWp 0.8 0.9 1.0 1.1 1.3 1.4 1.7 2.0 2.5
600 $/kWp 2.5 2.7 3.0 3.3 3.8 4.3 5.0 6.0 7.5
1000 $/kWp 4.2 4.5 5.0 5.6 6.3 7.1 8.3 10.0 12.5
1400 $/kWp 5.8 6.4 7.0 7.8 8.8 10.0 11.7 14.0 17.5
1800 $/kWp 7.5 8.2 9.0 10.0 11.3 12.9 15.0 18.0 22.5
2200 $/kWp 9.2 10.0 11.0 12.2 13.8 15.7 18.3 22.0 27.5
2600 $/kWp 10.8 11.8 13.0 14.4 16.3 18.6 21.7 26.0 32.5
3000 $/kWp 12.5 13.6 15.0 16.7 18.8 21.4 25.0 30.0 37.5
3400 $/kWp 14.2 15.5 17.0 18.9 21.3 24.3 28.3 34.0 42.5
3800 $/kWp 15.8 17.3 19.0 21.1 23.8 27.1 31.7 38.0 47.5
4200 $/kWp 17.5 19.1 21.0 23.3 26.3 30.0 35.0 42.0 52.5
4600 $/kWp 19.2 20.9 23.0 25.6 28.8 32.9 38.3 46.0 57.5
5000 $/kWp 20.8 22.7 25.0 27.8 31.3 35.7 41.7 50.0 62.5

Grid parity

Grid parity, the point at which photovoltaic electricity is equal to or cheaper than grid power, has already been achieved in some regions. Grid parity has been reached in Hawaii and many other islands that use diesel fuel to produce electricity.
In Italy, PV power has been cheaper than retail grid electricity since 2006. One kWh in Italy costs 21.08  €-cents. [4] Italy has an average of 1,600 kWh/m² sun power per year (Sicily has even more, at 1,800 kWh/m²).
Financial incentives

Main articles: PV financial incentives

The political purpose of incentive policies for PV is to grow the industry even where the cost of PV is significantly above grid parity, to allow it to achieve the economies of scale necessary to reach grid parity. The policies are implemented to promote national energy independence, high tech job creation and reduction of CO2 emissions.
Three incentive mechanisms are used (often in combination):

★ investment subsidies: the authorities refund part of the cost of installation of the system,

Feed-in Tariffs (FIT)/Net metering: the electricity utility buys PV electricity from the producer under a multiyear contract at a guaranteed rate.

Renewable Energy Certificates ("RECs")
With investment subsidies, the financial burden falls upon the taxpayer, while with feed-in tariffs the extra cost is distributed across the utilities' customer bases. While the investment subsidy may be simpler to administer, the main argument in favour of feed-in tariffs is the encouragement of quality. Investment subsidies are paid out as a function of the nameplate capacity of the installed system and are independent of its actual power yield over time, thus rewarding the overstatement of power and tolerating poor durability and maintenance. Some electric companies offer rebates to their customers, such as Austin Energy in Texas, which offers $4.50/watt installed up to $13,500.[43]
With feed-in tariffs, the financial burden falls upon the consumer. They reward the number of kilowatt-hours produced over a long period of time, but because the rate is set by the authorities, it may result in perceived overpayment. The price paid per kWh under a feed-in tariff exceeds the price of grid electricity. "Net metering" refers to the case where the price paid by the utility is the same as the price charged.
Where price setting by supply and demand is preferred, RECs can be used. In this mechanism, a renewable energy production or consumption target is set, and the consumer or producer is obliged to purchase renewable energy from whoever provides it the most competitively. The producer is paid via an REC. In principle this system delivers the cheapest renewable energy, since the lowest bidder will win. However uncertainties about the future value of energy produced are a brake on investment in capacity, and the higher risk increases the cost of capital borrowed.
The Japanese government through its Ministry of International Trade and Industry ran a successful programme of subsidies from 1994 to 2003. By the end of 2004, Japan led the world in installed PV capacity with over 1.1 GW.[5]
In 2004, the German government introduced the first large-scale feed-in tariff system, under a law known as the 'EEG' (Erneuerbare Energien Gesetz) which resulted in explosive growth of PV installations in Germany. At the outset the FIT was over 3x the retail price or 8x the industrial price. The principle behind the German system is a 20 year flat rate contract. The value of new contracts is programmed to decrease each year, in order to encourage the industry to pass on lower costs to the end users. The programme has been more successful than expected with over 1GW installed in 2006, and political pressure is mounting to decrease the tariff to lessen the future burden on consumers.
Subsequently Spain, Italy, Greece and France introduced feed-in tariffs. None have replicated the programmed decrease of FIT in new contracts though, making the German incentive relatively less and less attractive compared to other countries. The French FIT offers a uniquely high premium (EUR 0.55/kWh) for building integrated systems. California, Greece, France and Italy have 30-50% more insolation than Germany making them financially more attractive.
In 2006 California approved the 'California Solar Initiative', offering a choice of investment subsidies or FIT for small and medium systems and a FIT for large systems. The small-system FIT of $0.39 per kWh (far less than EU countries) expires in just 5 years, and the residential investment incentive is overwhelmed by a newly required time-of-use tariff, with a net cost increase to new systems. All California incentives are scheduled to decrease in the future depending as a function of the amount of PV capacity installed.
At the end of 2006, the Ontario Power Authority (Canada) began its Standard Offer Program, the first in North America for small renewable projects (10MW or less). This guarantees a fixed price of $0.42 CDN per kWh over a period of twenty years. Unlike net metering, all the electricity produced is sold to the OPA at the SOP rate. The generator then purchases any needed electricity at the current prevailing rate (e.g., $0.055 per kWh). The difference should cover all the costs of installation and operation over the life of the contract.
The price/kWh or kWp of the FIT or investment subsidies is only one of three factors that stimulate the installation of PV. The other two factors are insolation (the more sunshine, the less capital is needed for a given power output) and administrative ease of obtaining permits and contracts.
Unfortunately the complexity of approvals in California, Spain and Italy has prevented comparable growth to Germany even though the return on investment is better.
In some countries, additional incentives are offered for BIPV compared to stand alone PV.

★ France + EUR 0.25/kWh

★ Italy + EUR 0.04-0.09 kWh

★ Germany + EUR 0.05/kWh (facades only)

Environmental impacts


Unlike fossil fuel based technologies, solar power does not lead to any harmful emissions during operation, but the production of the panels leads to some amount of pollution. Also, placement of photovoltaics affects the environment. If they are located where photosynthesizing plants would normally grow, they simply substitute one potentially renewable resource (biomass) for another. It should be noted, however, that the biomass cycle converts solar radiation energy to electrical energy with significantly less efficiency than photovoltaic cells alone. However, if they are placed on the sides of buildings (such as in Manchester) or fences, or rooftops (as long as plants would not normally be placed there), or in the desert they are purely additive to the renewable power base.
Greenhouse gases

Life cycle greenhouse gas emissions are now in the range of 25-32 g/kWh and this could decrease to 15 g/kWh in the future.[44]
For comparison, a combined cycle gas-fired power plant emits some 400 g/kWh and a coal-fired power plant with carbon capture and storage some 200 g/kWh. Nuclear power emits 25 g/kWh on average; only wind power is better with a mere 11 g/kWh.
Cadmium

One issue that has often raised concerns is the use of cadmium in Cadmium telluride (CdTe) modules (not all PV technologies use CdTe). Cadmium in its metallic form is a toxic substance that has the tendency to accumulate in ecological food chains. The amount of cadmium used in PV modules is relatively small (5-10 g/m2) and with proper emission control techniques in place the cadmium emissions from module production can be almost zero. Current PV technologies lead to cadmium emissions of 0.3-0.9 microgram/kWh over the whole life-cycle. Most of these emissions actually arise through the use of coal power for the manufacturing of the modules, and coal and lignite combustion leads to much higher emissions of cadmium. Life-cycle cadmium emissions from coal is 3.1 microgram/kWh, lignite 6.2, and natural gas 0.2 microgram/kWh.
Energy returned on energy invested

A key indicator of environmental performance is the ratio of electricity generated divided by the energy required to build and maintain the equipment. Of course, little is gained if it takes as much energy to produce the modules as they produce in their lifetimes. This ratio is called the energy returned on energy invested (EROEI) This should not be confused with the economic return on investment, which varies according to local energy prices, subsidies available and metering techniques. A related concept is the energy pay-back time, i.e. the time required to produce an amount of energy as great as what was consumed during production.
Crystalline silicon PV systems presently have energy pay-back times of 1.5-2 years for South-European locations and 2.7-3.5 years for Middle-European locations. For silicon technology clear prospects for a reduction of energy input exist, and an energy pay-back of 1 year may be possible within a few years. Thin film technologies now have energy pay-back times in the range of 1-1.5 years (S.Europe). With lifetimes of such systems of at least 30 years, the EROEI is in the range of 10 to 30.

Photovoltaics companies


Major photovoltaics companies include BP Solar, Kyocera, Q-Cells, Sanyo, Sharp Solar, SolarWorld and Suntech.[45][46][47]
BP has been involved in solar power since 1973 and its subsidiary, BP Solar, is now one of the world's largest solar power companies with production facilities in the United States, Spain, India and Australia, employing a workforce of over 2,000 people worldwide.[48] BP solar is a major worldwide manufacturer and installer of photovoltaic solar cells for electricity.[49] The company has begun constructing two new solar photovoltaic (PV) solar cell manufacturing plants, one at its European headquarters in Tres Cantos, Madrid, and the second at its joint venture facility, Tata BP Solar, in Bangalore, India.[4]
Kyocera Corporation has announced a plan to increase its solar cell production to 500 MW per year in 2010. 500 MW is about three times the current output of 180 MW, and the company will reinforce production bases in Japan, the US, Europe and China, investing a total of about ¥30 billion through FY2010. Through this production enhancement, Kyocera looks to meet increasing demand across the world for solar cells.[51][52]
Q-Cells is the world's second largest cell manufacturer, based in Thalheim, Germany.[53]
Renewable Energy Corporation (REC) is based in Norway, and was established in 1996. Over a relatively short period, REC has become the world's largest producer of polysilicon and wafers for PV applications. REC is involved in all steps of the value chain, from production of solar grade silicon to wafer, cell and module production. The company has customers all over the globe and seven production plants in three different countries. It operates on three different continents and has approximately 1,100 employees.[54]
Sanyo Electric produced $213 million worth of solar cells at its plant in Hungary in 2006, and expects to triple its production capacity to 720,000 units in 2008.[55]
Sharp Solar is the world's largest photovoltaic module and cell manufacturer, which manufactures in Japan, and near Wrexham, UK. Sharp Solar produces both single and multi-crystalline solar cells which are used for many applications, from satellites to lighthouses, and industrial applications to residential use. Sharp began researching solar cells in 1959 with mass production first beginning in 1963. Production capacity amounted to 324 MW in 2004.[56][57]
SolarWorld is headquartered in Bonn, and purchased Shell Solar's crystalline silicon activities in 2006.
Suntech Power is based in Wuxi, China, where construction of a 1 GW module plant has begun. Year-end production capacity for 2007 is expected to be 480 MW.[58]
United Solar Ovonic, a wholly owned subsidiary of Energy Conversion Devices Ovonics currently employs 700 people and expects to increase its production of thin-film amorphous photovoltaics from 117 MW/yr at the end of 2007 to over 300 MW/yr by the end of 2010. They are best known for producing building-integrated photovoltaic (BIPV) roofing systems (roofing shingle photovoltaics) and continuous roll-to-roll manufacturing of thin-film amorphous silicon alloy multi-junction solar cells.[59]

Photovoltaic Industry Associations



SEIA: Solar Energy Industries Association US trade association of solar energy manufacturers, dealers, distributors, contractors

EPIA: European Photovoltaic Industry association

JPEA: Japanese Photovoltaic Energy Association ''in Japanese only''

BSW: German Solar Industry Association''in German, with English summary''

ASIF: Spanish PV Industry Association''in Spanish only''

Canadian Solar industry Association

Photovoltaics research institutes


There are many research institutions and departments at universities around the world who are active in photovoltaics research. Countries which are particularly active include Germany, Spain, Japan, Australia, China, and the USA.
Some universities and institutes which have a photovoltaics research department.

National Renewable Energy Laboratory NREL

Institut für Solare Energiesysteme ISE at the Fraunhofer Institute

Energy research Centre of the Netherlands (ECN)

Imperial College London: Experimental Solid State Physics

Instituto de Energía Solar, at Universidad Politécnica de Madrid

Centre for Renewable Energy Systems Technology, at Loughborough University

School of Photovoltaic and Renewable Energy Engineering at The University of New South Wales

Centre for Sustainable Energy Systems at the Australian National University

Ecole Polytechnique Fédérale de Lausanne Prof. Graetzel invented dye sensitized cells here

Advanced Energy Systems at Helsinki University of Technology

The Centre for Electronic Devices and Materials at Sheffield Hallam University

The Solar Caliometry Lab at Queen's University

Energy & Environmental Technology Application Center at the College of Nanoscale Science and Engineering SUNY at Albany

Institute of microtechnology at University of Neuchatel Switzerland

University of Konstanz

Arizona State University Photovoltaic Testing Laboratory

Institute of Energy Conversion at University of Delaware

World Alliance for Decentralized Energy

Florida Solar Energy Center at University of Central Florida

See also




Active solar

Deployment of solar power to energy grids

Green technology

High efficiency solar cells

Islanding

Microgeneration

Photoelectrochemical cell

Photovoltaic and renewable energy engineering in Australia

Photovoltaics in transport

Renewable energy

Renewable energy in the European Union

Solar car

Solar thermal energy

Solar power

Solar cell

★ Solar panel

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25. Table 1: Installed PV power in reporting IEA PVPS countries as of the end of 2005
26. Total photovoltaic power installed in IEA PVPS countries accessed 24 July 2007
27. Photovoltaic energy barometer 2007 - EurObserv’ER Systèmes solaires Le journal des énergies renouvelables n° 178, s. 49-70, 4/2007
28. Solar Systems Facts Sheet
29. World's largest photovoltaic power plants
30. 154 MW Victoria (Australia) Project
31. Portugal plans biggest solar station
32. THE WORLD'S LARGEST PHOTOVOLTAIC POWER PLANT IN MOURA, PORTUGAL
33. Large photovoltaic plant in Muldentalkreis
34. World’s largest solar power plant being built in eastern Germany
35. Large photovoltaic plant in Beneixama
36. Photovoltaic plant in Beneixama
37. Image of world's largest solar plant
38. The largest photovoltaic plant
39. GE, SunPower, Catavento team on plant
40. buildingsolar.com: Building Integrated Photovoltaics, Wisconsin Public Service Corporation, accessed: 2007-03-23.
41. Terrasolar, accessed: 2007-03-23.
42. [2]Personal Rapid Transit (PRT)
43. Solar Rebate Program
44.
Alsema, E.A.; Wild - Scholten, M.J. de; Fthenakis, V.M.
''Environmental impacts of PV electricity generation - a critical comparison of energy supply options'' ECN, September 2006; 7p.
Presented at the 21st European Photovoltaic Solar Energy Conference and Exhibition, Dresden, Germany, 4-8 September 2006.
45. ENF Brand Awards
46. Photovoltaic Solar Cells
47. World solar cell manufacturers
48. Solar Power Profitability: BP Solar
49. Welcome to BP Solar
50. BP Solar to Expand Its Solar Cell Plants in Spain and India
51. Kyocera to Triple Solar Cell Production to 500 MW in FY2010
52. Solar firm to double capacity
53. Q-cells
54. Evergreen Solar and Q-Cells Announce Partnership with REC
55. Japan's Sanyo expands Hungary solar plant
56. Sharp Solar Modules
57. Sharp Solar celebrates five years as world number one
58. Suntech Reports First Quarter 2007 Financial Results
59. Solar: Overview


External links


Publicly funded free data sources

EU PV Technology Platform - forum for stakeholders to influence EU policy,

PV Status Report 2006 : Comprehensive global overview by Arnulf Jager-Waldau, European Commission.

Trends in photovoltaic applications in selected IEA countries between 1992 and 2004

Information pertaining to photovoltaic solar electricity in each of the IEA PVPS member countries

US Department of Energy Energy Efficiency and Renewable Energy

DSIRE Listing of US state, local, utility, and federal incentives for renewable energy and energy efficiency.

Energy Saving Trust (UK) - What is Solar electricity?

Find Solar US solar estimator and solar pro locator (joint partnership with DOE).
Trade Press and commercial databases

Database of solar cells manufacturers

Solarbuzz Online news

Photon International International PV magazine, also has local editions for Germany and Spain

Renewable Energy World magazine covers PV among other forms of renewable energy

ENF Ltd PV Market Research and Industry Directory

Home Power Magazine

New York Times ongoing series on moving to a clean energy future
Others

SCIENTIFIC CALCULATION OF SUN EXPOSURE

Power Consumption of a Home

How Stuff Works: Solar cells.

Energy Atlas of the West

World's largest photovoltaic power plants

World’s largest solar power plant being built in eastern Germany

Global Solar Completed 1.4 MW Solar Power Station; Signs Agreement to Enlarge System to 2.4 MW

Plastic solar panels reach 6% efficiency

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