用户名: 密码: 验证码:
ZnO-Based Nanostructuring Strategy Using an Optimized Solution Process in CuInS2 Superstrate Photovoltaics
详细信息    查看全文
  • 作者:Dongwook Lee ; Kijung Yong
  • 刊名:Journal of Physical Chemistry C
  • 出版年:2014
  • 出版时间:April 17, 2014
  • 年:2014
  • 卷:118
  • 期:15
  • 页码:7788-7800
  • 全文大小:786K
  • 年卷期:v.118,no.15(April 17, 2014)
  • ISSN:1932-7455
文摘
Nanostructuring strategies have received significant attention recently in the context of thin-film solar cell design. Superstrate-type CuInS2 (CIS) thin-film solar cells based on hydrothermally grown ZnO nanorod (NR) arrays have been prepared through dimensional optimization and comparative parametric characterization to yield a highly efficient device configuration. Solution-processed transparent ZnO nanostructures covered with a uniform CdS buffer layer were prepared using liquid processing methods to achieve efficient light harvesting and transport of photogenerated charge carriers. Molecular precursor solutions containing metal and chalcogen precursors of CIS light absorbers yielded interpenetrated radial p鈥搉 junctions across nanostructured CdS/ZnO NR arrays. The performances of solar cells could be improved by experimentally optimizing device configurations across certain experimental parameters, such as the CIS annealing temperature, the buffer-layer thickness, or the NR length, all of which affect charge conduction and charge recombination kinetics. The interfacial charge-transfer properties and recombination characteristics were investigated by observing the dark current, electrochemical impedance, and open-circuit voltage (Voc) decay. Impedance data were fit to a proposed equivalent circuit model consisting of resistor鈥揷apacitor (ZnO/CdS) and resistor鈥揷onstant phase element (CPE) (CdS/CIS) components as a means for characterizing the interfacial properties. Recombination at the p鈥搉 interface increased in samples comprising a thin buffer layer and long NRs. A 250 掳C process temperature and optimal CdS deposition and ZnO NR growth times yielded the best efficiency, 6.8%. Our results suggest that solution-processed superstrate structures prepared using nanostructuring approaches could provide highly efficient low-cost photovoltaic devices.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700