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Application of single wall carbon nanotubes as transparent electrodes in Cu(In, Ga)Se₂-based solar cells : preprint

Author: Miguel A Contreras; National Renewable Energy Laboratory (U.S.)
Publisher: Golden, CO : National Renewable Energy Laboratory, 2006.
Series: Conference paper (National Renewable Energy Laboratory (U.S.)), NREL/CP-520-39914.
Edition/Format:   eBook : Document : National government publication : English
Summary:
We present a new thin-film solar cell structure in which the traditional transparent conductive oxide electrode (ZnO) is replaced by a transparent conductive coating consisting of a network of bundled single-wall carbon nanotubes. Optical transmission properties of these coatings are presented in relation to their electrical properties (sheet resistance), along with preliminary solar cell results from devices made  Read more...
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Details

Material Type: Document, Government publication, National government publication, Internet resource
Document Type: Internet Resource, Computer File
All Authors / Contributors: Miguel A Contreras; National Renewable Energy Laboratory (U.S.)
OCLC Number: 166267503
Notes: Title from title screen (viewed on Aug. 22, 2007).
"May 2006."
"Photovoltaic Energy Conversion (WCPEC-4), Waikoloa, Hawaii, May 7-12, 2006."
Description: 4 pages : digital, PDF file.
Details: Mode of access: Internet from the NREL web site. Address as of 8/22/07: http://www.nrel.gov/docs/fy06osti/39914.pdf; current access available via PURL.
Series Title: Conference paper (National Renewable Energy Laboratory (U.S.)), NREL/CP-520-39914.
Responsibility: M. Contreras [and others].

Abstract:

We present a new thin-film solar cell structure in which the traditional transparent conductive oxide electrode (ZnO) is replaced by a transparent conductive coating consisting of a network of bundled single-wall carbon nanotubes. Optical transmission properties of these coatings are presented in relation to their electrical properties (sheet resistance), along with preliminary solar cell results from devices made using CuIn1-xGaxSe2 thin film absorber materials. Achieving an energy conversion efficiency of>12% and a quantum efficiency of ~80% demonstrate the feasibility of the concept.

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