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High-performance Si microwire photovoltaics

Kelzenberg, Michael D. and Turner-Evans, Daniel B. and Putnam, Morgan C. and Boettcher, Shannon W. and Briggs, Ryan M. and Baek, Jae Yeon and Lewis, Nathan S. and Atwater, Harry A. (2011) High-performance Si microwire photovoltaics. Energy and Environmental Science, 4 (3). pp. 866-871. ISSN 1754-5692. http://resolver.caltech.edu/CaltechAUTHORS:20110323-080918474

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Abstract

Crystalline Si wires, grown by the vapor–liquid–solid (VLS) process, have emerged as promising candidate materials for lowcost, thin-film photovoltaics. Here, we demonstrate VLS-grown Si microwires that have suitable electrical properties for high-performance photovoltaic applications, including long minority-carrier diffusion lengths (L_n » 30 µm) and low surface recombination velocities (S « 70 cm·s^(-1)). Single-wire radial p–n junction solar cells were fabricated with amorphous silicon and silicon nitride surface coatings, achieving up to 9.0% apparent photovoltaic efficiency, and exhibiting up to ~600 mV open-circuit voltage with over 80% fill factor. Projective single-wire measurements and optoelectronic simulations suggest that large-area Si wire-array solar cells have the potential to exceed 17% energy-conversion efficiency, offering a promising route toward cost-effective crystalline Si photovoltaics.


Item Type:Article
Related URLs:
URLURL TypeDescription
http://dx.doi.org/10.1039/C0EE00549EDOIArticle
http://pubs.rsc.org/en/Content/ArticleLanding/2011/EE/c0ee00549ePublisherArticle
ORCID:
AuthorORCID
Boettcher, Shannon W. 0000-0001-8971-9123
Lewis, Nathan S.0000-0001-5245-0538
Atwater, Harry A.0000-0001-9435-0201
Additional Information:© 2011 The Royal Society of Chemistry. Received 12th October 2010, Accepted 24th November 2010. This work was supported by BP and in part by the Department of Energy, Basic Energy Sciences Energy Frontier Research Center program under grant DE-SC0001293 as well as the Department of Energy under grant DE-FG02-07ER46405. The work made use of facilities supported by the Caltech Center for Sustainable Energy Research and by the Center for Science and Engineering of Materials, an NSF Materials Research Science and Engineering Center at Caltech. Research was in part carried out at the Kavli Nanoscience Institute (KNI) and at the Molecular Materials Research Center of the Beckman Institute at Caltech. S.W.B. acknowledges the KNI for fellowship support. D.B.T-E. acknowledges the NSF for fellowship support. The authors acknowledge the assistance of Bruce Brunschwig, Joshua Spurgeon, Emily Warren and the KNI staff.
Group:Kavli Nanoscience Institute
Funders:
Funding AgencyGrant Number
BPUNSPECIFIED
Department of Energy (DOE)DE-SC0001293
Department of Energy (DOE)DE-FG02-07ER46405
Kavli Nanoscience InstituteUNSPECIFIED
Caltech Beckman InstituteUNSPECIFIED
NSFUNSPECIFIED
Record Number:CaltechAUTHORS:20110323-080918474
Persistent URL:http://resolver.caltech.edu/CaltechAUTHORS:20110323-080918474
Official Citation:High-performance Si microwire photovoltaics Michael D. Kelzenberg, Daniel B. Turner-Evans, Morgan C. Putnam, Shannon W. Boettcher, Ryan M. Briggs, Jae Yeon Baek, Nathan S. Lewis and Harry A. Atwater, Energy Environ. Sci., 2011, 4, 866 DOI: 10.1039/c0ee00549e
Usage Policy:No commercial reproduction, distribution, display or performance rights in this work are provided.
ID Code:23062
Collection:CaltechAUTHORS
Deposited By: Ruth Sustaita
Deposited On:29 Mar 2011 17:48
Last Modified:31 Jan 2017 18:16

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