Hydrophobic Hydrogen‐Bonded Polymer Network for Efficient and Stable Perovskite/Si Tandem Solar Cells

Author:

Liu Lu12ORCID,Farhadi Bita1,Li Jianxun12,Liu Siyi3,Lu Linfeng3,Wang Hui3,Du Minyong1,Yang Liyou4,Bao Shaojuan4,Jiang Xiao1,Dong Xinrui12,Miao Qingqing5,Li Dongdong136,Wang Kai12ORCID,Liu Shengzhong Frank12

Affiliation:

1. Dalian National Laboratory for Clean Energy Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 Liaoning China

2. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 P. R. China

3. Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201210 China

4. JINNENG Clean Energy Technology LTD Shanxi Comprehensive Reform Model Area, Jinzhong Area Shanxi 030300 China

5. Beijing Key Laboratory of Ionic Liquids Clean Process, CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P. R. China

6. Zhangjiang Laboratory Shanghai 201210 China

Abstract

AbstractThe pursuit of highly efficient and stable wide‐band gap (WBG) perovskite solar cells (PSCs), especially for monolithic perovskite/silicon tandem devices, is a key focus in achieving the commercialization of perovskite photovoltaics. In this study, we initially designed poly(ionic liquid)s (PILs) with varying alkyl chain lengths based on density functional theory calculations. Results pinpoint that PILs with longer alkyl chain lengths tend to exhibit more robust binding energy with the perovskite structure. Then we synthesized the PILs to craft a hydrophobic hydrogen‐bonded polymer network (HHPN) that passivates the WBG perovskite/electron transport layer interface, inhibits ion migration and serves as a barrier layer against water and oxygen ingression. Accordingly, the HHPN effectively curbs nonradiative recombination losses while facilitating efficient carrier transport, resulting in substantially enhanced open‐circuit voltage (Voc) and fill factor. As a result, the optimized single‐junction WBG PSC achieves an impressive efficiency of 23.18 %, with Voc as high as 1.25 V, which is the highest reported for WBG (over 1.67 eV) PSCs. These devices also demonstrate outstanding thermostability and humidity resistance. Notably, this versatile strategy can be extended to textured perovskite/silicon tandem cells, reaching a remarkable efficiency of 28.24 % while maintaining exceptional operational stability.

Funder

National Natural Science Foundation of China

Higher Education Discipline Innovation Project

Fundamental Research Funds for the Central Universities

Shanxi Provincial Science and Technology Department

Publisher

Wiley

Subject

General Medicine

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