Rationalization of passivation strategies toward high-performance perovskite solar cells

被引:169
|
作者
Zhang, Zhihao [1 ,2 ,5 ,6 ,7 ]
Qiao, Lu [4 ]
Meng, Ke [3 ]
Long, Run [4 ]
Chen, Gang [3 ]
Gao, Peng [1 ,2 ,5 ]
机构
[1] Chinese Acad Sci, CAS Key Lab Design & Assembly Funct Nanostruct, Fuzhou 350002, Fujian, Peoples R China
[2] Chinese Acad Sci, Fujian Prov Key Lab Nanomat Fujian Inst Res Struct, Fuzhou 350002, Fujian, Peoples R China
[3] ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China
[4] Beijing Normal Univ, Coll Chem, Key Lab Theoret & Computat Photochem, Minist Educ, Beijing 100875, Peoples R China
[5] Chinese Acad Sci, Xiamen Inst Rare Earth Mat, Haixi Inst, Lab Adv Funct Mat, Xiamen 361021, Peoples R China
[6] Sichuan Univ, Coll Mat Sci & Engn, Chengdu 610065, Peoples R China
[7] Sichuan Univ, Engn Res Ctr Alternat Energy Mat & Devices, Minist Educ, Chengdu 610065, Peoples R China
基金
中国国家自然科学基金; 北京市自然科学基金;
关键词
SURFACE PHOTOVOLTAGE SPECTROSCOPY; ELECTRON-HOLE RECOMBINATION; LEAD HALIDE PEROVSKITES; LEWIS-BASE PASSIVATION; INORGANIC PEROVSKITE; HYBRID PEROVSKITE; PLANAR PEROVSKITE; CARRIER LIFETIMES; EFFICIENT; FILMS;
D O I
10.1039/d2cs00217e
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Lead halide perovskite solar cells (PSCs) have shown unprecedented development in efficiency and progressed relentlessly in improving stability. All the achievements have been accompanied by diverse passivation strategies to circumvent the pervasive defects in perovskite materials, which play crucial roles in the process of charge recombination, ion migration, and component degradation. Among the tremendous efforts made to solve these issues and achieve high-performance PSCs, we classify and review both well-established and burgeoning passivation strategies to provide further guidance for the passivation protocols in PSCs, including chemical passivation to eliminate defects by the formation of chemical bonds, physical passivation to eliminate defects by strain relaxation or physical treatments, energetic passivation to improve the stability toward light and oxygen, and field-effect passivation to regulate the interfacial carrier behavior. The subtle but non-trivial consequences from various passivation strategies need advanced characterization techniques combining synchrotron-based X-ray analysis, capacitance-based measurements, spatially resolved imaging, fluorescent molecular probe, Kelvin probe force microscope, etc., to scrutinize the mechanisms. In the end, challenges and prospective research directions on advancing these passivation strategies are proposed. Judicious combinations among chemical, physical, energetic, and field-effect passivation deserve more attention for future high-efficiency and stable perovskite photovoltaics.
引用
收藏
页码:163 / 195
页数:33
相关论文
共 50 条
  • [31] Stable High-Performance Perovskite Solar Cells via Passivation of the Grain Boundary and Interface
    Gu, Leilei
    Wang, Shubo
    Chen, Yiqi
    Xu, Yibo
    Li, Ruiyi
    Liu, Di
    Fang, Xiang
    Jia, Xuguang
    Yuan, Ningyi
    Ding, Jianning
    ACS APPLIED ENERGY MATERIALS, 2021, 4 (07) : 6883 - 6891
  • [32] Grain Boundary Passivation Modulated by Molecular Doping for High-Performance Perovskite Solar Cells
    Hao, Yangyang
    Liu, Yue
    Cao, Guorui
    JOURNAL OF RENEWABLE MATERIALS, 2022, 10 (12) : 3505 - 3519
  • [33] Synergistic Crystallization and Passivation by a Single Molecular Additive for High-Performance Perovskite Solar Cells
    Du, Xinyi
    Zhang, Jing
    Su, Hang
    Guo, Xu
    Hu, Yingjie
    Liu, Dongle
    Yuan, Ningyi
    Ding, Jianning
    Gao, Lili
    Liu, Shengzhong
    ADVANCED MATERIALS, 2022, 34 (33)
  • [34] Robust Self-Assembled Molecular Passivation for High-Performance Perovskite Solar Cells
    Guo, Haodan
    Fang, Yanyan
    Cheng, Hong-Bo
    Wu, Jinpeng
    Lei, Yan
    Wang, Shumao
    Li, Xiangrong
    Dai, Yuhua
    Xiang, Wanchun
    Xue, Ding-Jiang
    Lin, Yuan
    Hagfeldt, Anders
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2022, 61 (25)
  • [35] Multifunctional Organic Molecule for Defect Passivation of Perovskite for High-Performance Indoor Solar Cells
    Tian, Chenqing
    Liu, Dongxue
    Dong, Yixin
    Wang, Yajie
    Yang, Tinghuan
    Yang, Yang
    Zhang, Meng
    Zhao, Erxin
    Wu, Nan
    Zhang, Zheng
    Yang, Ye
    Gong, Yongshuai
    Yan, Buyi
    Zhang, Shengxiong
    Zhang, Lu
    Niu, Tianqi
    MATERIALS, 2025, 18 (01)
  • [36] Additive-assisted defect passivation of perovskite with metformin hydrochloride: toward high-performance p-i-n perovskite solar cells
    Huang, Zhezhi
    Fu, Jianfei
    Ji, Wenxi
    Zhang, Longgui
    Chen, Qiaoyun
    Zhang, Zelong
    Zhou, Yi
    Song, Bo
    JOURNAL OF PHYSICS-ENERGY, 2022, 4 (04):
  • [37] Defects in Perovskite Solar Cells and Their Passivation Strategies
    Feng, Xin
    Liang, Xuefeng
    Fang, Zhou
    Li, Xinxia
    Wang, Zihan
    Li, Huifang
    Zhang, Lisheng
    CHEMISTRYSELECT, 2023, 8 (45):
  • [38] Strategies for High Performance Perovskite Solar Cells
    Ng, Annie
    Ren, Zhiwei
    Liu, Changwen
    Djurisic, Aleksandra B.
    Zhu, Ruixue
    Phillips, David Lee
    Surya, Charles
    OXIDE-BASED MATERIALS AND DEVICES X, 2019, 10919
  • [39] Challenges and strategies relating to device function layers and their integration toward high-performance inorganic perovskite solar cells
    Wang, Huaxin
    Li, Haiyun
    Cai, Wensi
    Zhang, Pengfei
    Cao, Siliang
    Chen, Zhenyu
    Zang, Zhigang
    NANOSCALE, 2020, 12 (27) : 14369 - 14404
  • [40] In situ nanocrystal seeding perovskite crystallization toward high-performance solar cells
    Wu, Wen
    Fang, Min
    Chao, Lingfeng
    Tao, Lei
    Lu, Hui
    Li, Bixin
    Ran, Xueqin
    Li, Ping
    Xia, Yingdong
    Zhang, Hui
    Chen, Yonghua
    MATERIALS TODAY ENERGY, 2021, 22