4.6 Article

Facile lattice tensile strain compensation in mixed-cation halide perovskite solar cells

期刊

JOURNAL OF ENERGY CHEMISTRY
卷 66, 期 -, 页码 422-428

出版社

ELSEVIER
DOI: 10.1016/j.jechem.2021.08.044

关键词

Lattice strain; Charge transfer; Br- ions; Ideal factor; Hybrid perovskite components

资金

  1. National Natural Science Foundation of China [51702038]
  2. Science & Technology Department of Sichuan Province [2020YFG0061]
  3. Recruit-ment Program for Young Professionals

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This study investigates the strain engineering in perovskite thin films through precursor aging, leading to strain compensation and improved performance in solar cells. The systematic characterization of charge carrier transport and recombination dynamics in the mixed-cation perovskite films provides insights into the strain modulation induced by aging. This facile approach offers a novel strain engineering strategy for PSCs technology.
Despite the rapid development of power conversion efficiency (PCE) for halide perovskite solar cells (PSCs), the lattice strain engineering in perovskite thin films has been rarely probed in recent years. Herein, a strain compensation by homogeneous crystallization in perovskite films is achieved with the aid of precursor aging in the mixed-cation perovskite of Cs-0.05(FA(0.)(83)MA(0)(.17))Pb(I0.90Br0.10)(3) with near 20% PCE in inverted devices. The homogeneous crystallization releases the residual tensile stress and induces more compressive stress at the edges of perovskite films, thus elongating the carrier lifetime and reducing the trap-assisted carrier recombination. The high dependence on the perovskite components in strain engineering strategy was systematically revealed, wherein MAPbI(3) and Cs-0.03(FA(0.83)MA(0.)(17))PbI3 film showed an increased compressive strain and FAPbI(3) film showed adverse tensile strain after aging. The density functional theory (DFT) calculations are further performed to reveal the change of electronic features. The precursor aging-induced strain modulation was correlated with a systematic characterization of the charge carrier transport and recombination dynamics in the mixed-cation perovskite films. We believe that this facile approach provides a novel strain engineering strategy for PSCs technology. (C) 2021 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

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