Defect passivation engineering of wide-bandgap perovskites for high-performance solar cells

被引:6
|
作者
Wu, Xiao [1 ]
Xiong, Guoqing [1 ]
Yue, Ziyao [1 ]
Dong, Ziyao [2 ]
Cheng, Yuanhang [1 ]
机构
[1] Nanjing Univ Sci & Technol, Sch New Energy, Jiangyin 214443, Jiangsu, Peoples R China
[2] Anhui Univ Technol, Sch Energy & Environm, Maanshan 243002, Anhui, Peoples R China
关键词
HALIDE PEROVSKITES; STABILITY;
D O I
10.1039/d3qm00970j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Wide-bandgap (WBG) mixed-halide perovskite solar cells (PVSCs) exhibit a wide range of applicability, such as tandem photovoltaics (PVs), underwater PVs, space PVs, and building-integrated photovoltaics (BIPVs). However, the state-of-the-art WBG mixed-halide PVSCs still suffer from phase segregation and large open-circuit voltage (Voc) loss, which significantly limit the overall power conversion efficiency of devices. A dominant source of these limitations is the presence of defects within the mixed-halide perovskite lattice structure and at interfaces between the perovskite and carrier transport layers (CTLs). In response, various device engineering strategies have been implemented to passivate the defects and improve device performance. Therefore, in this comprehensive review, different types of defects inherent in WBG mixed-halide perovskites were firstly described, followed by their detrimental effects on perovskite materials and corresponding device performance. Furthermore, several device engineering strategies to passivate the defects at perovskite buried interface, perovskite bulk, and perovskite surface had been summarized, respectively. These defect passivation schemes provided a forward-oriented perspective on forthcoming strategies for WBG mixed-halide PVSCs. These strategies not only offered valuable guidance for realizing enhanced efficiency but also improved the phase stability of WBG mixed-halide PVSCs in the pursuit of high-performance PV technology. This article provides a comprehensive review of the strategies for passivating defects in wide-bandgap perovskite solar cells.
引用
收藏
页码:800 / 813
页数:14
相关论文
共 50 条
  • [1] Defect engineering in wide-bandgap perovskites for efficient perovskite–silicon tandem solar cells
    Guang Yang
    Zhenyi Ni
    Zhengshan J. Yu
    Bryon W. Larson
    Zhenhua Yu
    Bo Chen
    Abdulwahab Alasfour
    Xun Xiao
    Joseph M. Luther
    Zachary C. Holman
    Jinsong Huang
    Nature Photonics, 2022, 16 : 588 - 594
  • [2] Defect engineering in wide-bandgap perovskites for efficient perovskite-silicon tandem solar cells
    Yang, Guang
    Ni, Zhenyi
    Yu, Zhengshan J.
    Larson, Bryon W.
    Yu, Zhenhua
    Chen, Bo
    Alasfour, Abdulwahab
    Xiao, Xun
    Luther, Joseph M.
    Holman, Zachary C.
    Huang, Jinsong
    NATURE PHOTONICS, 2022, 16 (08) : 588 - +
  • [3] Surface repair of wide-bandgap perovskites for high-performance all-perovskite tandem solar cells
    Lv, Xiaojing
    Li, Weisheng
    Zhang, Jin
    Yang, Yujie
    Jia, Xuefei
    Ji, Yitong
    Lin, Qianqian
    Huang, Wenchao
    Bu, Tongle
    Ren, Zhiwei
    Yao, Canglang
    Huang, Fuzhi
    Cheng, Yi-Bing
    Tong, Jinhui
    JOURNAL OF ENERGY CHEMISTRY, 2024, 93 : 64 - 70
  • [4] Surface repair of wide-bandgap perovskites for high-performance all-perovskite tandem solar cells
    Xiaojing Lv
    Weisheng Li
    Jin Zhang
    Yujie Yang
    Xuefei Jia
    Yitong Ji
    Qianqian Lin
    Wenchao Huang
    Tongle Bu
    Zhiwei Ren
    Canglang Yao
    Fuzhi Huang
    Yi-Bing Cheng
    Jinhui Tong
    Journal of Energy Chemistry, 2024, 93 (06) : 64 - 70
  • [5] Passivation of Sodium Benzenesulfonate at the Buried Interface of a High-Performance Wide-Bandgap Perovskite Solar Cell
    La, Sijia
    Mo, Yaqi
    Li, Xing
    Feng, Xuzheng
    Chen, Xianggang
    Li, Zhuoxin
    Yang, Miao
    Ren, Dongxu
    Liu, Shuyi
    Cui, Xiaoxia
    Chen, Jieqiong
    Zhang, Zhao
    Yuan, Zhengbo
    Cai, Molang
    MATERIALS, 2024, 17 (07)
  • [6] Grain Boundary Defect Passivation in Quadruple Cation Wide-Bandgap Perovskite Solar Cells
    Reza, Khan Mamun
    Gurung, Ashim
    Bahrami, Behzad
    Chowdhury, Ashraful Haider
    Ghimire, Nabin
    Pathak, Rajesh
    Rahman, Sheikh Ifatur
    Laskar, Md Ashiqur Rahman
    Chen, Ke
    Bobba, Raja Sekhar
    Lamsal, Buddhi Sagar
    Biswas, Liton Kumar
    Zhou, Yue
    Logue, Brian
    Qiao, Quinn
    SOLAR RRL, 2021, 5 (04)
  • [7] Interfacial Engineering of Wide-Bandgap Perovskites for Efficient Perovskite/CZTSSe Tandem Solar Cells
    Wang, Deng
    Guo, Hongling
    Wu, Xin
    Deng, Xiang
    Li, Fengzhu
    Li, Zhen
    Lin, Francis
    Zhu, Zonglong
    Zhang, Yi
    Xu, Baomin
    Jen, Alex K. Y.
    ADVANCED FUNCTIONAL MATERIALS, 2022, 32 (02)
  • [8] Interfacial passivation of wide-bandgap perovskite solar cells and tandem solar cells
    Xia, Rui
    Xu, Yibo
    Chen, Bingbing
    Kanda, Hiroyuki
    Franckevicius, Marius
    Gegevicius, Rokas
    Wang, Shubo
    Chen, Yifeng
    Chen, Daming
    Ding, Jianning
    Yuan, Ningyi
    Zhao, Ying
    Roldan-Carmona, Cristina
    Zhang, Xiaodan
    Dyson, Paul J.
    Nazeeruddin, Mohammad Khaja
    JOURNAL OF MATERIALS CHEMISTRY A, 2021, 9 (38) : 21939 - 21947
  • [9] Wide-Bandgap Metal Halide Perovskites for Tandem Solar Cells
    Tong, Jinhui
    Jiang, Qi
    Zhang, Fei
    Kang, Seok Beom
    Kim, Dong Hoe
    Zhu, Kai
    ACS ENERGY LETTERS, 2021, 6 (01): : 232 - 248
  • [10] Buried organic interlayer for high-performance and stable wide-bandgap perovskite solar cells
    Kim, Haeun
    Lee, Soo Yeon
    Park, Hansol
    Heo, Jihyeon
    Kim, Hakjun
    Kim, Yoonsung
    Prayogo, Juan Anthony
    Kim, Young-Hoon
    Whang, Dong Ryeol
    Chang, Dong Wook
    Park, Hui Joon
    CHEMICAL ENGINEERING JOURNAL, 2025, 509