Monday, February 7, 2011
Leibniz Institute - Increased Efficiency for CIGS Solar Cells
Posted: Feb 7th, 2011
Increased Efficiency for CIGS Solar Cells
(Nanowerk News) Scientists at INM — Leibniz Institute for New Materials developed a barrier layer that separates the metal carrier from the absorber film and thus increases the efficiency of metal-based CIGS solar cells. For the first time, the INM program division "Optical Materials" presents this development in the German Pavilion at the international trade fair "nano tech 2011" and also nationwide at the Hannover Messe 2011.
Corrosion and poor isolation between substrate and carrier material cause a lower efficiency for CIGS solar cells apart from other influences. Solar cells consist of copper (C), indium (I), gallium (G), and sulphur (S). Glass as carrier material and the low efficiency prevent the flexible application of these future solar cells in the automotive industry, for example.
The developed layer is glass-like. "It works as iron diffusion barrier and thus prevents corrosion and oxidation of the carrier", explains Peter William de Oliveira, head of the program division. "At the same time, the barrier works as insulating layer and reduces unintentional electrical currents from the absorber to the carrier", says Oliveira. Both functions increase the efficiency of metal-based CIGS solar cells by up to 13 percent.
The glass-like diffusion barrier is applied on the metal carrier by means of the sol-gel process. It is transparent and flexible and has a thickness of only a few micrometers. The INM scientists developed both the layer and up-scaled process. By means of dip coating and slot coating they produced foils in a DIN A3 size. The traditional roll-to-roll printing process allows the production of continuous layered foils up to a length of 50 meters and a width of about half a meter.
These and other applications are exhibited by INM at the international trade fair "nano tech 2011". Included are coatings with special properties, as for example transparent conductivity, antiadhesive, scratch-proof, antireflective or self-cleaning function, or layers for friction reduction or corrosion protection. Multifunctional coatings, which combine several of these properties, also belong to the INM research portfolio. The INM – Leibniz Institute for New Materials presents itself in the German Pavilion (Booth E-18-24) at the nano tech 2011 in Tokyo from 16th to 18th February 2011.
At the Hannover Messe, too, INM will present its skills and competencies at the Booth A-50 in Hall 2 – the Leading Trade Fair for Research and Technology and the International Leading Trade Fair for Research, Development and Technology Transfer.
The INM — Leibniz Institute for New Materials, situated in Saarbrücken (Germany), engages in fundamental and applied materials research – from molecules to pilot production. In interdisciplinary cooperation, the work of INM includes the fields of chemical nanotechnology, interface materials and materials in biology. Its focal research fields are chemical synthesis, physical analysis of surfaces, coatings and interfacial materials.
Background:
A recently published study of Lux Research Inc. confirms that the cost of goods sold for CIGS solar cells will rapidly decrease over the coming years. According to this study, an increased efficiency, among other things, will contribute to a gross margin of over 30 percent.
Contact:
Diffusion barrier, conductive transparent coatings, multifunctional coatings:
Dr. Peter W. de Oliveira
INM — Leibniz Institute for New Materials
Phone +49 681 9300 148
Email: peter.oliveira@inm-gmbh.de
Anti-adhesive coatings, scratch-proof coatings, coatings for friction reduction, multifunctional coatings:
Dr. Carsten Becker-Willinger
INM — Leibniz Institute for New Materials
Phone +49 681 9300 196
Email: nanomere@inm-gmbh.de
Source: INM - Leibniz Institute for New Materials
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Friday, January 7, 2011
Nanotechnology Used to Create Artificial Palladium
Scientists in Japan claim to have employed nanoscience to create an artificial form of palladium.
A technique developed by Professor Hiroshi Kitagawa and researchers from Kyoto University has generated a synthetic form of the rare metal.
It was produced by combining molecules of silver and rhodium - two metals that usually do not mix together - to create particles of an alloy that has similar properties to palladium.
The nanoparticles were used to develop a fine solution spray of the alloy, which it is thought could be used in industrial applications rather than relying on Chinese imports of palladium, Professor Kitagawa told newspaper Yomiuri.
He explained further research is now taking place with auto manufacturers and electronics companies to develop the process.
In related news, RNCOS has forecast a compound annual growth rate of 19 per cent for the global nanotechnology industry from 2011 to 2013 in its latest forecast.
Sunday, August 17, 2008
MIT Research May Bring Down Cost of Solar Energy
Imagine windows that not only provide a clear view and illuminate rooms, but also use sunlight to efficiently help power the building they are part of. MIT engineers report a new approach to harnessing the sun's energy that could allow just that.
"Light is collected over a large area [like a window] and gathered, or concentrated, at the edges," explains Marc A. Baldo, leader of the work and the Esther and Harold E. Edgerton Career Development Associate Professor of Electrical Engineering.
As a result, rather than covering a roof with expensive solar cells, the cells only need to be around the edges of a flat glass panel. In addition, the focused light increases the electrical power obtained from each solar cell "by a factor of over 40," Baldo says.
Because the system is simple to manufacture, the team believes that it could be implemented within three years — even added onto existing solar-panel systems to increase their efficiency by 50 percent for minimal additional cost. That, in turn, would substantially reduce the cost of solar electricity.
In addition to Baldo, the researchers involved are Michael Currie, Jon Mapel, and Timothy Heidel, all graduate students in the Department of Electrical Engineering and Computer Science, and Shalom Goffri, a postdoctoral associate in MIT's Research Laboratory of Electronics.
"Professor Baldo's project utilizes innovative design to achieve superior solar conversion without optical tracking," says Dr. Aravinda Kini, program manager in the Office of Basic Energy Sciences in the U.S. Department of Energy's Office of Science, a sponsor of the work. "This accomplishment demonstrates the critical importance of innovative basic research in bringing about revolutionary advances in solar energy utilization in a cost-effective manner."
Solar concentrators in use today "track the sun to generate high optical intensities, often by using large mobile mirrors that are expensive to deploy and maintain," Baldo says. Further, "solar cells at the focal point of the mirrors must be cooled, and the entire assembly wastes space around the perimeter to avoid shadowing neighboring concentrators."
The MIT solar concentrator involves a mixture of two or more dyes that is essentially painted onto a pane of glass or plastic. The dyes work together to absorb light across a range of wavelengths, which is then re-emitted at a different wavelength and transported across the pane to waiting solar cells at the edges.
In the 1970s, similar solar concentrators were developed by impregnating dyes in plastic. But the idea was abandoned because, among other things, not enough of the collected light could reach the edges of the concentrator. Much of it was lost en route.
The MIT engineers, experts in optical techniques developed for lasers and organic light-emitting diodes, realized that perhaps those same advances could be applied to solar concentrators. The result? A mixture of dyes in specific ratios, applied only to the surface of the glass, that allows some level of control over light absorption and emission. "We made it so the light can travel a much longer distance," Mapel says. "We were able to substantially reduce light transport losses, resulting in a tenfold increase in the amount of power converted by the solar cells."
This work was also supported by the National Science Foundation. Baldo is also affiliated with MIT's Research Laboratory of Electronics, Microsystems Technology Laboratories, and Institute for Soldier Nanotechnologies.
Mapel, Currie and Goffri are starting a company, Covalent Solar, to develop and commercialize the new technology. Earlier this year Covalent Solar won two prizes in the MIT $100K Entrepreneurship Competition. The company placed first in the Energy category ($20,000) and won the Audience Judging Award ($10,000), voted on by all who attended the awards.
Elizabeth Thomson is a writer in the MIT News Office.
