Back to Search Start Over

A band-gap-graded CZTSSe solar cell with 12.3% efficiency

Authors :
Dahyun Nam
Dong-Hwan Jeon
Hyeonsik Cheong
Shi-Joon Sung
Young-Ill Kim
Dae-Kue Hwang
Jin-Kyu Kang
Chan-Wook Jeon
Kee-Jeong Yang
Jung-Sik Kim
Si-Nae Park
Dae-Hwan Kim
Jun-Hyoung Sim
Dae-Ho Son
Source :
Journal of Materials Chemistry A. 4:10151-10158
Publication Year :
2016
Publisher :
Royal Society of Chemistry (RSC), 2016.

Abstract

Although Cu2ZnSn(S,Se)4 (CZTSSe) has attracted attention as an alternative to CuInGaSe2 (CIGS) as an absorber material in solar cells, its low efficiency is a serious shortcoming preventing its commercialization. To realize a high-efficiency CZTSSe solar cell, improved grain crystallinity, inhibited secondary-phase formation, controlled defect generation, adequate Na content, and band gap grading are required in the absorber layer. Few studies have focused specifically on band gap grading. In this study, a method of using SeS2, a new potential chalcogenization source material, to control the S and Se contents in a CZTSSe absorber and its effects were investigated. Using an appropriate SeS2/Se weight ratio, band gap grading was realized within the depletion region. By increasing the value of VOC through band gap grading in the depletion region, a record VOC deficit of 0.576 V was achieved. Furthermore, the possibility of enhancing JSC through the formation of a type-inverted n-type phase at the absorber surface in response to an appropriate alignment of the conduction-band minimum energy level and the Fermi energy pinning level is discussed. By introducing the chalcogenization source material SeS2 during the annealing process, CZTSSe solar cells with a maximum efficiency of 12.3% were obtained.

Details

ISSN :
20507496 and 20507488
Volume :
4
Database :
OpenAIRE
Journal :
Journal of Materials Chemistry A
Accession number :
edsair.doi...........f2262e9a6f6cb7a762574c277a451d7c