Solvent‐Assisted Surface Modification Using Metallocene‐Based Molecules for High‐Efficiency Perovskite/Silicon Tandem Solar Cells

Author:

Wang Chang1,Wang Shibo2,Shi Wei23,Su Zhaojun2,Gao Kun2,Cao Fengxian2,Xu Dacheng2,Lou Xinliang1,Wang Xinyu2,Li Kun2,Li WenHao2,Chen Xiang2,Li Haicheng2,Li Wenhao1,Tong Anling4,Xiao Yongtian1,Liu Jiang2,Zhang Xiaohong56,Yang Juan1,Yang Xinbo6ORCID

Affiliation:

1. School of Materials Science and Engineering Jiangsu University Zhenjiang Jiangsu 212013 P. R. China

2. College of Energy Soochow Institute for Energy and Materials InnovationS (SIEMIS) Soochow University Suzhou Jiangsu 215006 P. R. China

3. Monash Suzhou Research Institute Monash University Suzhou Industrial Park Suzhou 215000 P. R. China

4. Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education Institute of Materials Physical Chemistry Huaqiao University Xiamen Fujian 361021 P. R. China

5. Institute of Functional Nano & Soft Materials (FUNSOM) Soochow University Suzhou Jiangsu 215123 P. R. China

6. Jiangsu Key Laboratory of Advanced Negative Carbon Technologies Soochow University Suzhou Jiangsu 215123 P. R. China

Abstract

AbstractThe presence of a high density of defects at the perovskite/electron transport layer (ETL) interface results in significant nonradiative recombination losses, thus impeding the efficiency enhancement of perovskite/silicon tandem solar cells (TSCs). In this investigation, a metallocene‐based molecule, cobalt (III) dichlorophene hexafluorophosphate (CcPF6), is employed for perovskite surface passivation. To maximize its efficacy, the molecule is dissolved in a mixed solvent of acetonitrile and chlorobenzene, leading to the reconstruction of the perovskite surface and effective passivation of surface defects. This modification strategy substantially enhances the overall efficiency of perovskite/silicon tandem solar cells by mitigating the issue of low fill factor resulting from non‐uniform coating of the top perovskite layer on the textured silicon bottom cell. Leveraging a double‐sided textured silicon heterojunction (HJT) bottom cell, a certified power conversion efficiency (PCE) of 30.43% for a monolithic perovskite/silicon TSC (1.00 cm2) is achieved, featuring an open‐circuit voltage (Voc) of 1.93 V and a fill factor (FF) of 78.43%. After storage in the drying cabinet (5% humidity at 20 °C) for 1000 h, the device retains 94.27% of its initial performance.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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