Enhancement of power conversion efficiency of Cu2ZnSn(S,Se)4 Solar Cells by pretreating Mo electrode with H2O2

被引:0
|
作者
Liu, Yue [1 ,2 ,3 ]
Wang, Chunkai [1 ,2 ,3 ]
Ma, Ding [1 ,2 ,3 ]
Li, Mengge [1 ,2 ,3 ]
Sun, Yuting [1 ,2 ,3 ]
Sun, Xiaofei [1 ,2 ,3 ]
Zhu, Yan [1 ,2 ,3 ]
Yao, Bin [1 ,2 ,3 ]
Li, Yongfeng [1 ,2 ]
Ding, Zhanhui [1 ,2 ]
机构
[1] Jilin Univ, State Key Lab Superhard Mat, Changchun 130012, Peoples R China
[2] Jilin Univ, Coll Phys, Changchun 130012, Peoples R China
[3] Jilin Univ, Coll Phys, Key Lab Phys & Technol Adv Batteries, Minist Educ, Changchun 130012, Peoples R China
基金
中国国家自然科学基金;
关键词
Cu2ZnSn(S; Se)4; Solar cell; Mo oxide; Soak; Decomposition reaction; BACK CONTACT; KESTERITE CU2ZNSNS4; INTERMEDIATE LAYER; THIN-FILMS; INTERFACE; DEFECTS; PERFORMANCE; BUFFER; OXIDE;
D O I
10.1016/j.jallcom.2024.173801
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
It is proved that secondary phases, such as Cu2Se, and ZnSe etc., and MoSe2 layer can form at Cu2ZnSn(S,Se)4 (CZTSSe)/Mo electrode interface, due to that Mo electrode reacts with CZTSSe and Se vapor during selenization process. The secondary phases and MoSe2 with inappropriate thickness can decrease power conversion efficiency (PCE) of CZTSSe solar cell. In this work, a simple method was proposed to suppress the reaction between CZTSSe and Mo, and to optimize the thickness of MoSe2. This was achieved by growing a layer of Mo oxide in situ on the Mo electrode surface through soaking the Mo electrode in H2O2. The Mo oxide layer consisted of MoO3, MoOx and MoO2. It could suppress the reaction between Mo and CZTSSe, thus preventing the formation of secondary phases in CZTSSe. By further tuning the soaking time, the thickness and density of the Mo oxide layer were optimized, resulting in an optimized thickness of the MoSe2 layer and a significant improvement in the contact quality at both the front and back interfaces. This improvement is beneficial for suppressing carrier recombination and reducing contact resistance. Furthermore, the Cu/(Zn+Sn) ratio in CZTSSe was optimized, leading to an expansion of the depletion region width. As a result, the reverse saturation current density and series resistance decrease, while the photogenerated current density increases. This ultimately led to a rise in PCE from 7.66% for CZTSSe solar cells with Mo electrodes that were not soaked to 8.95% for those with Mo electrodes soaked for 20 s.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Microstructural characterization of Cu2ZnSn(S,Se)4 solar cells fabricated from nanoparticles
    Zhang, Yiwen
    Suyama, Naoki
    Goto, Masanori
    Kuwana, Jun
    Sugimoto, Kanta
    Satake, Tetsuo
    Kurokawa, Yasuyoshi
    Yin, Ming
    Yamada, Akira
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2015, 54 (08)
  • [42] Sputtered (Zn,Mg)O buffer layer for band offset control in Cu2ZnSn(S,Se)4 solar cells
    Hironiwa, Daisuke
    Matsuo, Nobuki
    Sakai, Noriyuki
    Katou, Takuya
    Sugimoto, Hiroki
    Chantana, Jakapan
    Tang, Zeguo
    Minemoto, Takashi
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2014, 53 (10)
  • [43] Improving the efficiency of Cu2ZnSn(S,Se)4 solar cell by using localized K-doped precursor film
    Xu, Haoyu
    Sun, Yuzhou
    Shen, Zhou
    Zhou, Qing
    Zhu, Qingyun
    Gao, Haifeng
    Gao, Chao
    Teng, Xiaoyun
    Wei, Yu
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2023, 258
  • [44] Insight into the role of post-annealing in air for high efficient Cu2ZnSn(S,Se)4 solar cells
    Gao, Shoushuai
    Zhang, Yi
    Ao, Jianping
    Li, Xiuling
    Qiao, Shuang
    Wang, Ying
    Lin, Shuping
    Zhang, Zhaojing
    Wang, Dongxiao
    Zhou, Zhiqiang
    Sun, Guozhong
    Wang, Shufang
    Sun, Yun
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2018, 182 : 228 - 236
  • [45] Antimony Doping in Solution-processed Cu2ZnSn(S,Se)4 Solar Cells
    Tai, Kong Fai
    Fu, Dongchuan
    Chiam, Sing Yang
    Huan, Cheng Hon Alfred
    Batabyal, Sudip Kumar
    Wong, Lydia Helena
    CHEMSUSCHEM, 2015, 8 (20) : 3504 - 3511
  • [46] Solution-Processed Cu2ZnSn(S, Se)4 Thin Film Solar Cells
    Cui G.
    Yang Y.
    Li Y.
    Wang Y.
    Zhu C.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2021, 49 (03): : 483 - 494
  • [47] A Progress Review on Challenges and Strategies of Flexible Cu2ZnSn(S, Se)4 Solar Cells
    Xie, Weihao
    Yan, Qiong
    Sun, Quanzhen
    Li, Yifan
    Zhang, Caixia
    Deng, Hui
    Cheng, Shuying
    SOLAR RRL, 2023, 7 (04):
  • [48] Optimization of the Selenization Pressure Enabling Efficient Cu2ZnSn(S,Se)4 Solar Cells
    Guo, Hongling
    Meng, Rutao
    Hu, Long
    Lin, Chun-Ho
    Sun, Yali
    Liu, Yue
    Wu, Jianyu
    Shen, Zhan
    Chu, Dewei
    Wang, Gang
    Wu, Li
    Liang, Guangxing
    Xiong, Shifu
    Liu, Fangfang
    Zhang, Yi
    Wu, Tom
    SOLAR RRL, 2022, 6 (01):
  • [49] Cu2ZnSn(S,Se)4 thin film solar cells fabricated with benign solvents
    Zhang C.
    Zhong J.
    Tang J.
    Frontiers of Optoelectronics, 2015, 8 (3) : 252 - 268
  • [50] Defects in Cu2ZnSn(S,Se)4 Solar Cells Studied by Photoluminescence, Admittance and IVT
    Levcenko, S.
    Just, J.
    Larramona, G.
    Bourdais, S.
    Dennler, G.
    Unold, T.
    2014 IEEE 40TH PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), 2014, : 402 - 404