Recent progress in defect engineering for kesterite solar cells

被引:8
|
作者
Sun, Kaiwen [1 ]
Huang, Jialiang [1 ]
Li, Jianjun [1 ]
Yan, Chang [1 ]
Hao, Xiaojing [1 ]
机构
[1] Univ New South Wales, Australian Ctr Adv Photovolta, Sch Photovolta & Renewable Energy Engn, Sydney, NSW 2033, Australia
基金
澳大利亚研究理事会;
关键词
thin film solar cells; kesterite solar cells; Cu2ZnSn(S; Se)(4) (CZTSSe; CZTS); defect engineering; THIN-FILM; EFFICIENCY; CU2ZNSNSE4; GROWTH; AG; CU(IN; GA)SE-2; SUBSTITUTION; VOLTAGE; IMPACT;
D O I
10.1007/s11433-022-1939-6
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Kesterite Cu2ZnSn(S, Se)(4) (CZTSSe) thin film solar cells have been regarded as one of the most promising thin film photovoltaic technologies, offering a low-cost and environmentally friendly solar energy option. Although remarkable advances have been achieved in kesterite solar cells, the performance gap relative to mature thin film photovoltaic technologies such as CIGSe and CdTe remains large. Significant open-circuit voltage (V-OC) deficit has been recognized as the main limiting factor to performance improvement, with undesirable intrinsic defects being a key culprit contributing to the low V-OC. To realize the promise inherent in kesterite CZTS to become an earth-abundant alternative to existing thin film photovoltaic technologies with comparable performance, significant research effort has been invested to tackle the challenging defect issues. In this review, recent progress and achievements relevant to engineering improvements to the defect properties of the semiconductor have been examined and summarized. Promising strategies include: (i) manipulating the synthesis process to obtain a desirable reaction pathway and chemical environment; (ii) introducing cation substitution to increase the ionic size difference and supress the related band tailing deep-level defects; (iii) applying post deposition treatment (PDT) with alkaline elements to passivate the detrimental defects. These advances obtained from work on kesterite solar cells may lead to future high performance from this material and may be further extended to other earth-abundant chalcogenide photovoltaic technologies.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Recent research progress in perovskite solar cells
    Chai Lei
    Zhong Min
    ACTA PHYSICA SINICA, 2016, 65 (23)
  • [42] Recent progress of flexible perovskite solar cells
    Tang, Guanqi
    Yan, Feng
    NANO TODAY, 2021, 39
  • [43] Recent Progress on Research of Polymer Solar Cells
    Zhang, Jian-feng
    Qian, Yan-bing
    PROCEEDINGS OF THE 7TH NATIONAL CONFERENCE ON CHINESE FUNCTIONAL MATERIALS AND APPLICATIONS (2010), VOLS 1-3, 2010, : 1449 - 1453
  • [44] Recent progress in flexible organic solar cells
    Li, Shitong
    Li, Zhixiang
    Wan, Xiangjian
    Chen, Yongsheng
    ESCIENCE, 2023, 3 (01):
  • [45] Recent progress in bifacial perovskite solar cells
    Prashant Kumar
    Gyanendra Shankar
    Basudev Pradhan
    Applied Physics A, 2023, 129
  • [46] Organic Solar Cells: Recent Progress and Challenges
    Chen, Lin X.
    ACS ENERGY LETTERS, 2019, 4 (10): : 2537 - 2539
  • [47] Recent progress in crystalline silicon solar cells
    Tanaka, Makoto
    IEICE ELECTRONICS EXPRESS, 2013, 10 (16):
  • [48] Recent Progress of Flexible Perovskite Solar Cells
    Xie, Haixia
    Yin, Xingtian
    Guo, Yuxiao
    Liu, Jie
    Que, Wenxiu
    Wang, Gangfeng
    PHYSICA STATUS SOLIDI-RAPID RESEARCH LETTERS, 2019, 13 (05):
  • [49] Recent progress of perovskite solar cells at UCLA
    Yang, Yang
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250
  • [50] Recent progress in bifacial perovskite solar cells
    Kumar, Prashant
    Shankar, Gyanendra
    Pradhan, Basudev
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2023, 129 (01):