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Division of Energy & Environmental Technology
1. Journal Articles
The alterations of carrier separation in kesterite solar cells
Yang, Kee Jeong
;
Kim, Sam Mi
;
Sim, Jun Hyoung
;
Son, Dae Ho
;
Kim, Dae-Hwan
;
Kim, Juran
;
Jo, William
;
Yoo, Hye Sun
;
Kim, Jun Ho
;
Kang, Jin-Kyu
Division of Energy & Environmental Technology
1. Journal Articles
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Title
The alterations of carrier separation in kesterite solar cells
Issued Date
2018-10
Citation
Yang, Kee Jeong. (2018-10). The alterations of carrier separation in kesterite solar cells. Nano Energy, 52, 38–53. doi: 10.1016/j.nanoen.2018.07.039
Type
Article
Author Keywords
CZTSSe
;
Carrier separation
;
Surface potential
;
Local current
;
Defect
;
Flexible thin-film solar cell
Keywords
CU(IN,GA)SE-2 THIN-FILMS
;
LEAD-FREE SOLDER
;
GRAIN-BOUNDARIES
;
EARTH-ABUNDANT
;
ZN-SN
;
LOW-COST
;
CU2ZNSN(S,SE)(4)
;
EFFICIENCY
;
CU2ZNSNS4
;
ALLOYS
ISSN
2211-2855
Abstract
Cu2ZnSn(S,Se)S4 (CZTSSe) thin films have attracted attention as low-cost absorber materials for solar cells; however, further studies are required to develop flexible solar cells from this material and to achieve a high power conversion efficiency. Toward this objective, this work investigated eight types of precursors applied on flexible Mo foil substrates, some of which also contained a layer of NaF. Secondary phases, defects, and defect clusters were different in the various samples, and the surface electrical characteristics of the CZTSSe absorber layer varied accordingly. In contrast to those in the CIGS-based cells, defects and defect clusters generated in the CZTSSe absorber layer caused an upward band bending-like band structure to form at the grain boundaries (GBs), thereby forming an intra-grain (IG) current path. By improving carrier separation, a flexible CZTSSe thin-film solar cell was developed on a Mo foil substrate with a power conversion efficiency of 7.04%. Thus, the efficiency of CZTSSe thin-film solar cells could be increased through carrier separation measures that enabled the collection of holes toward the GBs and of electrons toward IGs. © 2018 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/9074
DOI
10.1016/j.nanoen.2018.07.039
Publisher
Elsevier
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