Efficient perovskite solar cells via improved carrier management

被引:0
|
作者
Jason J. Yoo
Gabkyung Seo
Matthew R. Chua
Tae Gwan Park
Yongli Lu
Fabian Rotermund
Young-Ki Kim
Chan Su Moon
Nam Joong Jeon
Juan-Pablo Correa-Baena
Vladimir Bulović
Seong Sik Shin
Moungi G. Bawendi
Jangwon Seo
机构
[1] Massachusetts Institute of Technology,Department of Chemistry
[2] Korea Research Institute of Chemical Technology,Division of Advanced Materials
[3] Massachusetts Institute of Technology,Department of Electrical Engineering and Computer Science
[4] Korea Advanced Institute of Science and Technology,Department of Physics
[5] Ulsan National Institute of Science and Technology (UNIST),Central Research Facilities
[6] Georgia Institute of Technology,School of Materials Science and Engineering
[7] Sungkyunkwan University,Department of Energy Science
[8] Korea Research Institute of Chemical Technology,Division of Advanced Materials
来源
Nature | 2021年 / 590卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Metal halide perovskite solar cells (PSCs) are an emerging photovoltaic technology with the potential to disrupt the mature silicon solar cell market. Great improvements in device performance over the past few years, thanks to the development of fabrication protocols1–3, chemical compositions4,5 and phase stabilization methods6–10, have made PSCs one of the most efficient and low-cost solution-processable photovoltaic technologies. However, the light-harvesting performance of these devices is still limited by excessive charge carrier recombination. Despite much effort, the performance of the best-performing PSCs is capped by relatively low fill factors and high open-circuit voltage deficits (the radiative open-circuit voltage limit minus the high open-circuit voltage)11. Improvements in charge carrier management, which is closely tied to the fill factor and the open-circuit voltage, thus provide a path towards increasing the device performance of PSCs, and reaching their theoretical efficiency limit12. Here we report a holistic approach to improving the performance of PSCs through enhanced charge carrier management. First, we develop an electron transport layer with an ideal film coverage, thickness and composition by tuning the chemical bath deposition of tin dioxide (SnO2). Second, we decouple the passivation strategy between the bulk and the interface, leading to improved properties, while minimizing the bandgap penalty. In forward bias, our devices exhibit an electroluminescence external quantum efficiency of up to 17.2 per cent and an electroluminescence energy conversion efficiency of up to 21.6 per cent. As solar cells, they achieve a certified power conversion efficiency of 25.2 per cent, corresponding to 80.5 per cent of the thermodynamic limit of its bandgap.
引用
收藏
页码:587 / 593
页数:6
相关论文
共 50 条
  • [21] Improved charge carrier lifetime in planar perovskite solar cells by bromine doping
    Kiermasch, David
    Rieder, Philipp
    Tvingstedt, Kristofer
    Baumann, Andreas
    Dyakonov, Vladimir
    SCIENTIFIC REPORTS, 2016, 6
  • [22] Efficient quantum dot sensitized solar cells via improved loading amount management
    Wei Wang
    Yiling Xie
    Fangfang He
    Yuan Wang
    Weinan Xue
    Yan Li
    GreenEnergy&Environment, 2023, 8 (01) : 213 - 223
  • [23] Double-side improved charge extraction via 2D perovskite for efficient inverted perovskite solar cells
    Xiong, Shaobing
    Zang, Xiaoxiao
    Wu, Hongbo
    Li, Di
    Jiang, Sheng
    Ding, Liming
    Li, Bo
    Fahlman, Mats
    Bao, Qinye
    NANO ENERGY, 2025, 134
  • [24] A boosting carrier transfer passivation layer for achieving efficient perovskite solar cells
    Xi, Jiahao
    Yuan, Jifeng
    Du, Jiuyao
    Yan, Xiaoqin
    Tian, Jianjun
    JOURNAL OF MATERIALS CHEMISTRY C, 2022, 10 (26) : 9794 - 9801
  • [25] Carrier Interfacial Engineering by Bismuth Modification for Efficient and Thermoresistant Perovskite Solar Cells
    Chen, Cong
    Liu, Dali
    Zhang, Boxue
    Bi, Wenbo
    Li, Hao
    Jin, Junjie
    Chen, Xu
    Xu, Lin
    Song, Hongwei
    Dai, Qilin
    ADVANCED ENERGY MATERIALS, 2018, 8 (20)
  • [26] Regulated perovskite crystallinity via green mixed antisolvent for efficient perovskite solar cells
    Yi, Jing
    Zhuang, Jia
    Ma, Zhu
    Guo, Zhongli
    Zhou, Weiya
    Zhao, Shuangshuang
    Zhang, Hua
    Luo, Xinyi
    Li, Haimin
    ORGANIC ELECTRONICS, 2019, 69 : 69 - 76
  • [27] Improving carrier transport for stable and efficient perovskite solar cells via MXene-modified 2D perovskite capping layer
    Li, Yaobin
    Zou, Yu
    Yang, Shuang
    Wang, Hantao
    Yu, Wenjin
    Guo, Haoqing
    Li, Xiangdong
    Cao, Yunxuan
    Liu, Yueli
    Tang, Zhenyu
    Qu, Bo
    Xiao, Lixin
    Chen, Zhijian
    CHEMICAL ENGINEERING JOURNAL, 2024, 500
  • [28] Management of perovskite intermediates for highly efficient inverted planar heterojunction perovskite solar cells
    Xia, Yingdong
    Ran, Chenxin
    Chen, Yonghua
    Li, Qi
    Jiang, Naisheng
    Li, Changzhi
    Pan, Yufeng
    Li, Taotao
    Wang, JianPu
    Huang, Wei
    JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (07) : 3193 - 3202
  • [29] Charge carrier management for developing high-efficiency perovskite solar cells
    Byranvand, Mahdi Malekshahi
    Saliba, Michael
    MATTER, 2021, 4 (06) : 1758 - 1759
  • [30] Efficient Perovskite Hybrid Solar Cells via Ionomer Interfacial Engineering
    Wang, Kai
    Liu, Chang
    Yi, Chao
    Chen, Long
    Zhu, Jiahua
    Weiss, R. A.
    Gong, Xiong
    ADVANCED FUNCTIONAL MATERIALS, 2015, 25 (44) : 6875 - 6884