Stabilizing orthorhombic CsSnI 3 perovskites with optimized electronic properties by surface ligands with inter-molecular hydrogen bond

Currently, the exploration of green tin halide perovskite solar cells (PSCs) based on orthorhombic (γ-) CsSnI 3 is fundamentally hindered by its intrinsic bad stability. Herein, based on the first principles calculation, three surface-ligand-passivated configurations having inter-molecular hydrogen...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2021-11, Vol.9 (43), p.24641-24649
Hauptverfasser: Zheng, Yapeng, Fang, Zhi, Shang, Minghui, Sun, Qian, Zheng, Jinju, Yang, Zuobao, Hou, Xinmei, Yang, Weiyou
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Sprache:eng
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Zusammenfassung:Currently, the exploration of green tin halide perovskite solar cells (PSCs) based on orthorhombic (γ-) CsSnI 3 is fundamentally hindered by its intrinsic bad stability. Herein, based on the first principles calculation, three surface-ligand-passivated configurations having inter-molecular hydrogen bonds are rationally designed and investigated for stabilizing γ-CsSnI 3 . It is discovered that the inter-molecular hydrogen bond could suppress the distortions of both ligands and the octahedral of perovskites, thus favoring improvement in the stability of γ-CsSnI 3 , which is closely related to bond strength. Moreover, the existing inter-molecular hydrogen bond could limit the localization of charge density, which helps promote electron transition and mobility with optimized carrier effective masses, thus favoring an enhanced performance of γ-CsSnI 3 PSCs. The present work might give some insight on pushing forward the strategy of surface ligand passivation for engineering stabilized γ-CsSnI 3 PSCs with high efficiency.
ISSN:2050-7488
2050-7496
DOI:10.1039/D1TA07207B