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Surface Passivation of Perovskite Film by Sodium Toluenesulfonate for Highly Efficient Solar Cells
Author(s) -
Zhang Mengmeng,
Hu Wanpei,
Shang Yanbo,
Zhou Weiran,
Zhang Wenfeng,
Yang Shangfeng
Publication year - 2020
Publication title -
solar rrl
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.544
H-Index - 37
ISSN - 2367-198X
DOI - 10.1002/solr.202000113
Subject(s) - passivation , perovskite (structure) , halide , materials science , mesoporous material , energy conversion efficiency , inorganic chemistry , chemical engineering , layer (electronics) , perovskite solar cell , chemistry , nanotechnology , optoelectronics , organic chemistry , catalysis , engineering
Ionic defects at the surfaces of organolead halide perovskite films are detrimental to both the efficiency and stability of perovskite solar cells (PSCs). Herein, sodium p ‐toluenesulfonate (STS) is applied during the surface modification of perovskite layer for the first time, leading to the efficient surface passivation of the perovskite film and consequently significant enhancements in both efficiency and stability of mixed‐cation PSC devices. Upon incorporating STS atop the perovskite layer, the power conversion efficiency of the Cs 0.05 MA 0.12 FA 0.83 PbI 2.55 Br 0.45 (abbreviated as CsMAFA) mesoporous‐structure mixed‐cation PSC devices improves from 18.70% to 20.05% with reduced hysteresis. The sulfonate (–SO 3 − ) anion of STS coordinates with the Pb 2+ of CsMAFA perovskite, and the Na + cation of STS electrostatically interacts with the anions (I − /Br − ) of CsMAFA perovskite, resulting in the surface passivation of the CsMAFA perovskite film with reduced electron and hole trap state densities. In addition, STS modification induces an upshift of the valence band of perovskite, facilitating hole extraction from the perovskite layer to the hole transport layer with suppressed interfacial charge recombination. Moreover, such a trap state passivation of perovskite film leads to improvement of the ambient stability of PSC devices.

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