Ionic‐Rich Vermiculite Tailoring Dynamic Bottom‐Up Gradient for High‐Efficiency Perovskite Solar Cells

Author:

Zhang Junshuai12,Li Jiabao1,Duan Jialong1ORCID,Zhang Xinyu1,Dou Jie1,Guo Qiyao1,Jiang Chi1,Zhao Yuanyuan3,Huang Hao4,Tang Qunwei1

Affiliation:

1. Institute of Carbon Neutrality College of Chemical and Biological Engineering Shandong University of Science and Technology Qingdao 266590 P. R. China

2. School of Materials Science and Engineering University of Jinan Jinan 250022 P. R. China

3. College of Energy Storage Technology University of Science and Technology Qingdao 266590 P. R. China

4. Guangxi Key Laboratory of Processing for Non‐ferrous Metals and Featured Materials School of Resources Environment and Materials Guangxi University Nanning 530004 P. R. China

Abstract

AbstractMixed‐halide perovskites are emerging as excellent photovoltaic candidates because of their tunable bandgaps for semitransparent and tandem perovskite solar cells. However, the notorious film quality originated from the rapidly downward crystallization process susceptibly propagates enormous detrimental defects, which deteriorate the photovoltaic performance and accelerate halide segregation. To address this issue, herein, a multilayer alkalis‐intercalated‐vermiculite is employed as pre‐buried interface modifier to regulate the perovskite lattice property. The matchable lattice structure between perovskite and vermiculite by forming Pb─O bond not only releases the interfacial strain during the film growth but also the embedded alkalis ions can gradually diffuse into perovskite lattice to form a favorable vertical gradient owing to the weak interlamellar van der Waals interaction, playing bis‐roles of atomical lubricant and ion‐reservoir to eliminate detrimental defects. As a result, the film quality and lattice stability is significantly improved with suppressed phase segregation for mixed‐halide perovskites, accompanying a champion efficiency of 11.42% for carbon‐based CsPbIBr2 device, 15.25% for carbon‐based CsPbI2Br device and 23.17% for p‐i‐n inverted (Cs0.05MA0.05FA0.9)Pb(I0.93Br0.07)3 cell. This work provides a new strategy on buried interface engineering for making high‐efficiency and stable perovskite platforms.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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