In‐Situ Polymer Framework Strategy Enabling Printable and Efficient Perovskite Solar Cells by Mitigating “Coffee Ring” Effect

Author:

Li Linfeng1,Huang Zengqi1,Meng Xiangchuan2,Xing Zhi2,Fan Baojin2,Li Jiaxuan2,Chen Yiwang123ORCID

Affiliation:

1. Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University 99 Ziyang Avenue Nanchang 330022 China

2. College of Chemistry and Chemical Engineering/Institute of Polymers and Energy Chemistry (IPEC)/Jiangxi Provincial Key Laboratory of New Energy Chemistry Nanchang University 999 Xuefu Avenue Nanchang 330031 China

3. Peking University Yangtze Delta Institute of Optoelectronics Nantong 226010 China

Abstract

AbstractOrganic–inorganic hybrid perovskites are considered ideal candidates for future photovoltaic applications due to their excellent photovoltaic properties. Although solution‐printed manufacturing has shown inherent potential for the low‐cost, high‐throughput production of thin‐film semiconductor electronics, the high‐quality and high‐reproducibility deposition of large‐area perovskite remains a bottleneck that restricts their commercialization due to the droplet coffee‐ring effect (CRE). In this study, these issues are addressed by introducing an in situ polymer framework. The 3D framework formed by spontaneous cross‐linking improves the precursor viscosity and homogenizes its heat diffusion coefficient, counteracting the lateral capillary flow of the colloidal particles and anchoring their flocculent movement. Thus, the Marangoni convection intensity is properly controlled to ensure high‐quality perovskite films, which significantly enhances reproducibility in printing efficient photovoltaics by mitigating the CRE. Subsequently, the perovskite solar cells and modules achieve power conversion efficiencies of 23.94 and 17.53%, and exhibit positive environmental stability, retaining over 90 and 78% efficiency after storage for 2500 and 1600 h, respectively. This work may serves as a foundation for exploring precursor rheology to match the homogeneous deposition requirements of perovskite photovoltaics and facilitating the advancement of their printing manufacturing and commercialization transition.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

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