Dipolar Chemical Bridge Induced CsPbI3 Perovskite Solar Cells with 21.86 % Efficiency

Author:

Qiu Junming1,Mei Xinyi1,Zhang Mingxu1,Wang Guoliang1,Zou Shengwen2,Wen Long3,Huang Jianmei2,Hua Yong3,Zhang Xiaoliang1ORCID

Affiliation:

1. School of Materials Science and Engineering Beihang University Beijing 100191 China

2. School of Energy and Power Engineering Beihang University Beijing 100191 China

3. Yunnan Key Laboratory for Micro/Nano Materials & Technology School of Materials and Energy Yunnan University Kunming 650091 China

Abstract

AbstractCsPbI3 perovskite receives tremendous attention for photovoltaic applications due to its ideal band gap and good thermal stability. However, CsPbI3 perovskite solar cells (PSCs) significantly suffer from photovoltage deficits because of serious interfacial energy losses within the PSCs, which to a large extent affects the photovoltaic performance of PSCs. Herein, a dipolar chemical bridge (DCB) is constructed between the perovskite and TiO2 layers to lower interfacial energy losses and thus improve the charge extraction of PSCs. The results reveal that the DCB could form a beneficial interfacial dipole between the perovskite and TiO2 layers, which could optimize the interfacial energetics of perovskite/TiO2 layers and thus improve the energy level alignment within the PSCs. Meanwhile, the constructed DCB could also simultaneously passivate the surface defects of perovskite and TiO2 layers, greatly lowering interfacial recombination. Consequently, the photovoltage deficit of CsPbI3 PSCs is largely reduced, leading to a record efficiency of 21.86 % being realized. Meanwhile, the operation stability of PSCs is also largely improved due to the high‐quality perovskite films with released interfacial tensile strain being obtained after forming the DCB within the PSCs.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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