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Recent News and Articles on the Keywords: solar cells + solar efficiency + solar  Related to the article below (Last Update: 5/12/2008)


PV Tech
HelioVolt claims CIGS solar efficiency mark
CNET News.com, CA - May 11, 2008
Solar upstart HelioVolt on Monday will announce that it has reached 12.2 percent efficiency with its CIGS solar cells, setting another mark in the race ...
HelioVolt Achieves 12.2% Solar Thin Film Efficiency with Rapid ... Compound Semiconductors Online (press release)
HelioVolt Exceeds 12% Solar Thin Film Efficiency with Rapid ... Business Wire (press release)
HelioVolt claims CIGS thin film efficiency record VentureBeat
Greentech Media - Solid State Technology
all 20 news articles »
SunPower Announces World-Record Solar Cell Efficiency
Earthtimes (press release), UK -
SunPower high-efficiency solar cells and solar panels generate up to 50 percent more power than conventional solar technologies and have a uniquely ...SPWR
Crystalline Solar Cells Production Venture
Technology News Daily, AZ -
After the ramp up phase, the solar cells will provide an electrical efficiency of more than 16%. The improvement of cell efficiency will become the key ...QI

PV Tech
Applied Materials Announces Powerful SunFab Performance Service ...
WELT ONLINE, Germany -
Applied Materials, Inc. today announced another first for the solar industry with its SunFab Performance Service? program. This unique service solution ...
Applied Materials Announces Powerful SunFab Performance Service ... PR-Inside.com (Pressemitteilung)
all 12 news articles »  AMAT
Solar Energy Centre ? an attractive option to supplement the ...
Press Information Bureau (press release), India -
The demand of solar cells which are called solar wafers and modules or solar panels is very high in the country. We import about 30 per cent solar cells. ...OTC:SLRE

All American Patriots (press release)
Solar Power Sizzles
All American Patriots (press release), Sweden -
By admin - Posted on May 12th, 2008 Washington, DC - Global production of solar photovoltaic (PV) cells increased 51 percent in 2007, to 3733 megawatts, ...OTC:SOPW

The Future of Things
New Method Doubles Solar Cells Efficiency
The Future of Things - May 8, 2008
Scientists from the University of Washington (UW) have developed a unique method that could drastically boost the efficiency of cheap solar cells. ...
HelioVolt, SunPower claim solar records
EETimes.com -
Previously, SunPower, a subsidiary of Cypress Semiconductor Corp., achieved a 22 percent efficiency with its solar cells, based on its Gen 2 technology. ...SPWR
A bright future
Globe and Mail, Canada - May 8, 2008
Perhaps that's where the true promise of solar power lies; not in expensive high-efficiency cells, but in clever new designs that are cheaper to produce. ...
Ghana: 'Literally, This Is Energy From Dirt'
AllAfrica.com, Washington - May 11, 2008
You've heard of solar power, and also wind power. Now, you might start hearing about soil power as well. Microbial fuel cells (MFCs) that make use of the ...
Source: Google News

A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO 2 films -
BO'Regan, M Graetzel - Nature, 1991 - palgrave-journals.com
... 353737a0. A low-cost, high-efficiency solar cell based on dye-sensitized
colloidal TiO 2 films. Brian O'Regan * & Michael Gr?tzel ?. ...

Progress toward 20% efficiency in Cu (In, Ga) Se? 2 ? polycrystalline thin-film solar cells
MA CONTRERAS, B EGAAS, K RAMANATHAN, J HILTNER, A … - Progress in photovoltaics, 1999 - cat.inist.fr
Progress toward 20% efficiency in Cu (In, Ga) Se? 2 ? polycrystalline
thin-film solar cells. MA CONTRERAS, B EGAAS, K RAMANATHAN ...

Fundamentals of Solar Cells -
AL Fahrenbruch, RH Bube - Academic, New York, 1983 - osti.gov
... possibilities for innovative design.^Contents, abridged: Solar insolation.^The
calculation of solar efficiency.^Silicon solar cells.^Heterojunction and ...

Properties of 19?2% efficiency ZnO/CdS/CuInGaSe 2 thin-film solar cells -
K Ramanathan, MA Contreras, CL Perkins, S Asher, … - Progress in Photovoltaics: Research and Applications, 2003 - doi.wiley.com
... The conversion efficiency of solar cells fabricated in research laboratories
represent a useful reference point in this journey. ...

2.5% efficient organic plastic solar cells -
SE Shaheen, CJ Brabec, NS Sariciftci, F Padinger, … - Applied Physics Letters, 2001 - link.aip.org
... and the overlap of the spectral response with the sun?s spectrum to achieve a power
conversion efficiency that is approaching that of inorganic solar cells. ...

Solar cells: operating principles, technology, and system applications -
MA Green - 1982 - osti.gov
... Conversion ;140600 -- Solar Energy-- Photovoltaic Power Systems; ;SOLAR CELLS--
REVIEWS; BAND THEORY;CONCENTRATOR SOLAR CELLS;DESIGN;EFFICIENCY;FABRICATION;PN ...

Hybrid Nanorod-Polymer Solar Cells -
WU Huynh, JJ Dittmer, AP Alivisatos - Science, 2002 - sciencemag.org
... made on separate occasions from three different synthetic batches of CdSe totaling
57 individual solar cells. The maximum external quantum efficiency of each ...

Thin-film CdS/CdTe solar cell with 15.8% efficiency -
J Britt, C Ferekides - Applied Physics Letters, 1993 - link.aip.org
... J. Britt, C. Ferekides. Abstract. This letter describes the fabrication and
characteristics of high-efficiency thin-film CdS/CdTe heterojunction solar cells. ...

Solid-state dye-sensitized mesoporous TiO? 2 ? solar cells with high photon-to-electron … -
U BACH, D LUPO, P COMTE, JE MOSER, F WEISS?RTEL, J … - Nature(London), 1998 - cat.inist.fr
... cases the incident monochromatic photon-to-electron conversion efficiency remained
low ... A solar cell based on OMeTAD converts photons to electric current with a ...

Detailed Balance Limit of Efficiency of p-n Junction Solar Cells -
W Shockley, HJ Queisser - Journal of Applied Physics, 1961 - link.aip.org
Detailed Balance Limit of Efficiency of p-n Junction Solar Cells. [Journal of Applied
Physics 32, 510 (1961)]. William Shockley, Hans J. Queisser. Abstract. ...

Source: Google Scholar

Consortium Achieves Record-High Solar Cell Efficiency

Description

A University of Delaware-led consortium has achieved a record-breaking combined solar cell efficiency of 42.8 percent from sunlight at standard terrestrial conditions, and will team with DuPont in a Defense Advanced Research Projects Agency project to transition the lab-scale work to an engineering and manufacturing prototype model.

Using a novel technology that adds multiple innovations to a very high-performance crystalline silicon solar cell platform, a consortium led by the University of Delaware has achieved a record-breaking combined solar cell efficiency of 42.8 percent from sunlight at standard terrestrial conditions.

That number is a significant advance from the current record of 40.7 percent announced in December and demonstrates an important milestone on the path to the 50 percent efficiency goal set by the Defense Advanced Research Projects Agency (DARPA). In November 2005, the UD-led consortium received approximately $13 million in funding for the initial phases of the DARPA Very High Efficiency Solar Cell (VHESC) program to develop affordable portable solar cell battery chargers.

Combined with the demonstrated efficiency performance of the very high efficiency solar cells’ spectral splitting optics, which is more than 93 percent, these recent results put the pieces in place for a solar cell module with a net efficiency 30 percent greater than any previous module efficiency and twice the efficiency of state-of-the-art silicon solar cell modules.

As a result of the consortium’s technical performance, DARPA is initiating the next phase of the program by funding the newly formed DuPont-University of Delaware VHESC Consortium to transition the lab-scale work to an engineering and manufacturing prototype model. This three-year effort could be worth as much as $100 million, including industry cost-share.

The ground-breaking research was led by Allen Barnett, principal investigator and UD professor of electrical and computer engineering, and Christiana Honsberg, co-principal investigator and associate professor of electrical and computer engineering. The two direct the University’s High Performance Solar Power Program and will continue working to achieve 50 percent efficiency, a benchmark that when reached would mean a doubling of the efficiency of terrestrial solar cells based around a silicon platform within a 50-month span.

“The University of Delaware is very proud of the achievements of Allen Barnett and Christiana Honsberg, both their research and their work in leading the consortium,” UD President Patrick T. Harker said. “We are grateful to DARPA for its confidence in the University and very much look forward to working with DuPont and our other partners in industry, government and academia on this project, which will have wide application and will be of particular benefit to our men and women in the service.”

“UD has become an important center for renewable energy research, and we applaud the efforts of the University-led consortium,” UD Provost Dan Rich said. “This project is of vital importance, particularly given the pressing need for alternative sources of energy.”

"The University is committed to the advancement of leading-edge research that solves important problems and results in the invention of new technologies aimed at enhancing society," Carolyn Thoroughgood, vice provost for research and graduate studies at UD, said. "This project highlights the quality of research at UD and also demonstrates the value of collaboration."

“The achievement of this benchmark is a major step forward in the ongoing development of low-cost solar photovoltaic technology,” Rhone Resch, president of the Solar Energy Industries Association, said. “Furthermore, we applaud DARPA for making a strategic investment in American’s energy security. We anticipate that this project will result in a wide range of commercial solar applications that will benefit the U.S. military and American consumers alike.”

"Many of us have been working with programs to take us to a real photovoltaic energy future. This project is already working in that future. DARPA has leapfrogged the 'conventional,' demonstrating that creativity and focus can significantly accelerate revolutionary research-bench concepts toward reality, demonstrating this does not have to take decades,” Lawrence L. Kazmerski, director of the U.S. Department of Energy’s National Center for Photovoltaics at the National Renewable Energy Laboratory in Golden, Colo., said. “This is a first step—but a significant one in making sure our energy future is what we know it should look like."

The consortium’s goal is to create solar cells that operate at 50 percent in production, Barnett said. With the fresh funding and cooperative efforts of the DuPont-UD consortium, he said it is expected new high efficiency solar cells could be in production by 2010.

The highly efficient VHESC solar cell uses a novel lateral optical concentrating system that splits solar light into three different energy bins of high, medium and low, and directs them onto cells of various light sensitive materials to cover the solar spectrum. The system delivers variable concentrations to the different solar cell elements. The concentrator is stationary with a wide acceptance angle optical system that captures large amounts of light and eliminates the need for complicated tracking devices.

The VHESC would have immediate application in the high-technology military, which increasingly relies upon a variety of electronics for individual soldiers and the equipment that supports them. As well, it is hoped the solar cells will have a large number of commercial applications.

Today, the American soldier carries a pack that weighs nearly 100 pounds of which about 20 pounds are the three-day supply of batteries needed to power their gear. The DARPA program aims to dramatically reduce the battery logistics pipeline and provide the soldier with more power at reduced weight, thus improving mobility, survivability and the availability of advanced electronic technologies on the battlefield. With the dramatically higher efficiency of the VHESC technology, solar rechargers could be integrated into common battlefield devices such as night vision goggles, radios and GPS navigation systems.

Barnett and Honsberg said that reaching the 42.8 percent mark is a significant advance in solar cell efficiency, particularly given the unique small and portable architecture being used by the consortium and the short time – 21 months – in which it was developed.

Modern solar cell systems rely on the concentration of the sun’s rays, a concept similar to youngsters using magnifying glasses to set scraps of paper on fire. Honsberg said the previous best of 40.7 percent efficiency was achieved with a high concentration device that requires sophisticated tracking optics and features a concentrating lens the size of a table and more than 30 centimeters, or about 1 foot, thick.

The UD consortium’s devices are potentially far thinner at less than 1 centimeter. “This is a major step toward our goal of 50 percent efficiency,” Barnett said. “The percentage is a record under any circumstance, but it’s particularly noteworthy because it’s at low concentration, approximately 20 times magnification. The low profile and lack of moving parts translates into portability, which means these devices easily could go on a laptop computer or a rooftop.”

Honsberg said the advance of 2 percentage points is noteworthy in a field where gains of 0.2 percent are the norm and gains of 1 percent are seen as significant breakthroughs.

“This achievement is the direct result of the new architecture we developed under the DARPA program,” Barnett and Honsberg said. “By integrating the optical design with the solar cell design, we have entered previously unoccupied design space leading to a new paradigm about how to make solar cells, how to use them, and what they can do.”

During the first 21 months of the VHESC program, a diverse team of academia, government lab and industrial partners, led by UD, was focused on developing the technology basis for a new extremely high efficiency solar cell. The rapid success of that effort has enabled the present transition to a focus on prototype product development.

The team’s novel approach provides for affordability and also flexibility in the choice of materials and the integration of new technologies as they are developed.

Barnett credits the early success of the program to the team approach taken to solving the problem. Partners in the initial phase included BP Solar, Blue Square Energy, Energy Focus, Emcore and SAIC. Key research contributors included the University of Delaware, National Renewable Energy Laboratory, Georgia Institute of Technology, Purdue University, University of Rochester, Massachusetts Institute of Technology, University of California Santa Barbara, Optical Research Associates and the Australian National University. “What we’ve done,” he said, “is create a virtual lab by having all of these companies, universities and national laboratories in the consortium. This has given us access to a broad range of capabilities in terms of expertise and equipment.”

That approach is exemplified by the fact that the record-breaking system features three types of solar cells—one made by industry (Emcore), one by the National Renewable Energy Laboratory and one by UD.

“This is a solar cell that works,” Barnett said, adding, “This technology has the potential to change the way electricity is generated throughout the world.”

Barnett believes the 50 percent efficiency mark is just the beginning. “Our best inventions are in front of us,” he said. “The consortium has been a super team, and has worked to develop new devices and architectures based on a breakthrough design paradigm.”

Honsberg said the efficiency potential for solar cells is significantly higher still, which leaves “large room for improvement.” She said she enjoys the engineering challenge, particularly in a field in which “we create things that make a difference.”

The newly formed DuPont-University of Delaware VHESC consortium will be made up of industrial partners, national laboratories and universities.

“The new consortium will build upon the considerable technical successes of the first phases of the VHESC program and provide the strong industry-led and product-focused leadership required to ultimately bring the VHESC product to commercialization,” Barnett said. “We look forward to working with DuPont and others to continue our progress in developing this novel solar power research.”

UD offers one of the nation’s broadest research programs in photovoltaics. It is home to the High Performance Solar Power Program in the Department of Electrical and Computer Engineering and the Institute of Energy Conversion, a multidisciplinary laboratory devoted to the research and development of thin film photovoltaic solar cells. Honsberg is developing one of the nation’s most complete courses of study for solar power systems, which is partially sponsored by the National Science Foundation’s Integrative Graduate Education and Research Training (IGERT) program.

Barnett earned a doctorate in electrical engineering from Carnegie-Mellon University, is a Fellow of the Institute of Electrical and Electronic Engineers (IEEE), was awarded the IEEE’s William R. Cherry Award for outstanding contributions to the advancement of photovoltaic science and technology and won UD’s Karl W. Boer Solar Energy Medal of Merit in 2001 for “pioneering high-performance, thin-crystalline silicon solar cells, founding and leading a world-class enterprise for the commercialization of solar electric products, and outstanding continuing service to the solar electric power community.”

Honsberg earned a bachelor’s degree in electrical engineering in 1986, a master’s degree in 1989 and a doctorate in electrical and computer engineering in 1992, all from UD. She was an associate professor in the Centre for Photovoltaic Engineering at the University of New South Wales from 1993-2000 and an associate professor of electrical and computer engineering at Georgia Tech before joining the UD faculty in 2004.

 
 
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