High‐Performance Indoor Perovskite Solar Cells by Self‐Suppression of Intrinsic Defects via a Facile Solvent‐Engineering Strategy

Author:

Han EQ1,Lyu Miaoqiang1ORCID,Choi Eunyoung2,Zhao Yuying3,Zhang Yurou1,Lee Jaeho1,Lee Su‐Min4,Jiao Yalong3,Ahmad Syed Haseeb Ali1,Seidel Jan56,Yun Jae Sung27,Yun Jung‐Ho14,Wang Lianzhou1ORCID

Affiliation:

1. Nanomaterials Centre School of Chemical Engineering Australian Institute for Bioengineering and Nanotechnology The University of Queensland (St Lucia) Brisbane Queensland 4072 Australia

2. Australian Centre for Advanced Photovoltaics School of Photovoltaic and Renewable Energy Engineering University of New South Wales Sydney New South Wales 2052 Australia

3. College of Physics Hebei Key Laboratory of Photophysics Research and Application Hebei Normal University Shijiazhuang 050024 China

4. Air and Environment Energy Nexus Lab Department of Environmental Science and Engineering College of Engineering Kyung Hee University Gyeonggi‐do 17104 Republic of Korea

5. School of Materials Science and Engineering University of New South Wales Sydney New South Wales 2052 Australia

6. ARC Centre of Excellence in Future Low‐Energy Electronics Technologies (FLEET) University of New South Wales Sydney New South Wales 2052 Australia

7. Advanced Technology Institute Department of Electrical and Electronic Engineering University of Surrey Guildford Surrey GU2 7XH UK

Abstract

AbstractLead halide perovskite solar cells have been emerging as very promising candidates for applications in indoor photovoltaics. To maximize their indoor performance, it is of critical importance to suppress intrinsic defects of the perovskite active layer. Herein, a facile solvent‐engineering strategy is developed for effective suppression of both surface and bulk defects in lead halide perovskite indoor solar cells, leading to a high efficiency of 35.99% under the indoor illumination of 1000 lux Cool‐white light‐emitting diodes. Replacing dimethylformamide (DMF) with N‐methyl‐2‐pyrrolidone (NMP) in the perovskite precursor solvent significantly passivates the intrinsic defects within the thus‐prepared perovskite films, prolongs the charge carrier lifetimes and reduces non‐radiative charge recombination of the devices. Compared to the DMF, the much higher interaction energy between NMP and formamidinium iodide/lead halide contributes to the markedly improved quality of the perovskite thin films with reduced interfacial halide deficiency and non‐radiative charge recombination, which in turn enhances the device performance. This work paves the way for developing efficient indoor perovskite solar cells for the increasing demand for power supplies of Internet‐of‐Things devices.

Funder

Korea Basic Science Institute

Ministry of Education

Ministry of Trade, Industry and Energy

University of Queensland

Australian Research Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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