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Suppressing ion migration in metal halide perovskite via interstitial doping with a trace amount of multivalent cations

Authors :
Yepin Zhao
Ilhan Yavuz
Minhuan Wang
Marc H. Weber
Mingjie Xu
Joo-Hong Lee
Shaun Tan
Tianyi Huang
Dong Meng
Rui Wang
Jingjing Xue
Sung-Joon Lee
Sang-Hoon Bae
Anni Zhang
Seung-Gu Choi
Yanfeng Yin
Jin Liu
Tae-Hee Han
Yantao Shi
Hongru Ma
Wenxin Yang
Qiyu Xing
Yifan Zhou
Pengju Shi
Sisi Wang
Elizabeth Zhang
Jiming Bian
Xiaoqing Pan
Nam-Gyu Park
Jin-Wook Lee
Yang Yang
Zhao Y., YAVUZ İ., Wang M., Weber M. H. , Xu M., Lee J., Tan S., Huang T., Meng D., Wang R., et al.
Source :
Nature Materials. 21:1396-1402
Publication Year :
2022
Publisher :
Springer Science and Business Media LLC, 2022.

Abstract

Cations with suitable sizes to occupy an interstitial site of perovskite crystals have been widely used to inhibit ion migration and promote the performance and stability of perovskite optoelectronics. However, such interstitial doping inevitably leads to lattice microstrain that impairs the long-range ordering and stability of the crystals, causing a sacrificial trade-off. Here, we unravel the evident influence of the valence states of the interstitial cations on their efficacy to suppress the ion migration. Incorporation of a trivalent neodymium cation (Nd3+) effectively mitigates the ion migration in the perovskite lattice with a reduced dosage (0.08%) compared to a widely used monovalent cation dopant (Na+, 0.45%). The photovoltaic performances and operational stability of the prototypical perovskite solar cells are enhanced with a trace amount of Nd3+ doping while minimizing the sacrificial trade-off.

Details

ISSN :
14764660 and 14761122
Volume :
21
Database :
OpenAIRE
Journal :
Nature Materials
Accession number :
edsair.doi.dedup.....d595440f5da2a2746f05fcf461f73e4e