A Single‐Step Cleaning Process for Simultaneous Removal of Surface Impurities and Passivation of Sub‐Surface Defects in Perovskite Solar Cells

Author:

Cai Wanxian1,Wang Yudi1,Li Wenzhe2,Yin Yanfeng3,Liu Jing4,Cai Wanqing4,Wang Shuhong1,Guo Jingya1,Chang Shuai4,Li Shukui4,Wang Xiuyun1,Shi Yantao1ORCID

Affiliation:

1. State Key Laboratory of Fine Chemicals School of Chemistry Frontier Science Center for Smart Materials Dalian University of Technology Dalian 116024 China

2. Institute of New Energy Technology Department of Electronic Science and Engineering College of Information Science and Technology Jinan University Guangzhou 510632 China

3. State Key Laboratory of Molecular Reaction Dynamics and Dynamics Research Center for Energy and Environmental Materials Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

4. Faculty of Materials Science MSU‐BIT University Shenzhen 518172 China

Abstract

AbstractPerovskite solar cells (PSCs) suffer from the presence of non‐active and metastable species on the surface of solution‐processed perovskite films, and their adverse effects on charge extraction and long‐term stability cannot be fully addressed by conventional surface passivation strategies. In this study, a novel concept is proposed to achieve both precise removal of surface impurities and effective passivation of sub‐surface defects in a single step, utilizing a functional polymer‐based cleaning strategy. The moderate intermolecular force provided by the functional polymer and their inherent robust interchain interactions enable effective surface cleaning without disturbing the active crystal lattice. Following surface cleaning, the electron‐donating groups (C═O) in the polymer passivate the uncoordinated Pb2+ defects at the sub‐surface level. This synergistic effect of surface cleaning and sub‐surface defect passivation leads to a drastic reduction in interfacial non‐radiative recombination, elimination of ion migration pathways, and prevention of triggers for photodegradation. As a result, the power conversion efficiency (PCE) significantly improved from 22.84% to 25.51%, accompanied by a remarkable enhancement in operational stability. Moreover, the operability and effectiveness of this approach make it highly suitable for scaling up perovskite solar modules in the future.

Funder

National Natural Science Foundation of China

Liaoning Revitalization Talents Program

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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