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Strained hybrid perovskite thin films and their impact on the intrinsic stability of perovskite solar cells
Author(s) -
Jingjing Zhao,
Yehao Deng,
Haotong Wei,
Xiaopeng Zheng,
Zhenhua Yu,
Yuchuan Shao,
Jeffrey E. Shield,
Jinsong Huang
Publication year - 2017
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aao5616
Subject(s) - perovskite (structure) , materials science , thin film , stability (learning theory) , chemical engineering , nanotechnology , computer science , engineering , machine learning
Organic-inorganic hybrid perovskite (OIHP) solar cells have achieved comparable efficiencies to those of commercial solar cells, although their instability hinders their commercialization. Although encapsulation techniques have been developed to protect OIHP solar cells from external stimuli such as moisture, oxygen, and ultraviolet light, understanding of the origin of the intrinsic instability of perovskite films is needed to improve their stability. We show that the OIHP films fabricated by existing methods are strained and that strain is caused by mismatched thermal expansion of perovskite films and substrates during the thermal annealing process. The polycrystalline films have compressive strain in the out-of-plane direction and in-plane tensile strain. The strain accelerates degradation of perovskite films under illumination, which can be explained by increased ion migration in strained OIHP films. This study points out an avenue to enhance the intrinsic stability of perovskite films and solar cells by reducing residual strain in perovskite films.

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