Hydrophobic Electron‐Transport Layer for Efficient Tin‐Based Perovskite Solar Cells

Author:

He Feifei1,Li Tianpeng1,Shen Tao1,Zhao Yinghan1,Jin Zuoming1,Zhang Zhiguo1,Pu Yu1,Deng Liangliang2,Qin Lang1,Zhan Yiqiang2,Liu Yunqi1,Wang Yang13,Liang Jia1ORCID

Affiliation:

1. Department of Materials Science, State Key Laboratory of Photovoltaic Science and Technology Fudan University 220 Handan Road Shanghai 200433 China

2. Center of Micro‐Nano System, School of Information Science and Technology Fudan University 220 Handan Road Shanghai 200433 China

3. State Key Laboratory of Molecular Engineering of Polymers Fudan University 2005 Songhu Road Shanghai 200438 China

Abstract

AbstractWith excellent biocompatibility, a narrow bandgap, and long thermal carrier lifetime, tin‐based perovskite solar cells (TPSCs) are promising within the solar technology. The fullerene derivative indene‐C60 bisadduct (ICBA) is recognized as the most efficient electron‐transport material for TPSCs, thanks to its suitable band structure. Nevertheless, the limited electron transport capability and susceptibility to moisture penetration of ICBA have hindered the progress of TPSCs. Herein, the study proposes a new hydrophobic electron‐transport layer (ETL) comprising a surface‐anchored non‐fullerene n‐type semiconducting polymer layer, poly (naphthalene diimide‐alt‐dithiophenebezothiadiazole) (PNDI‐BT), in conjunction with ICBA. PNDI‐BT exhibits high electron mobilities, a fitting band structure, robust interaction with Sn‐based perovskites, and exceptional moisture resistance, effectively addressing the shortcomings of ICBA. Consequently, this innovative hydrophobic ETL of PNDI‐BT/ICBA enhances electron transport and protects Sn‐based perovskites from moisture. As a result, the inverted TPSCs with the new hydrophobic ETL achieve an impressive efficiency of 13.90%, surpassing TPSCs with the ICBA layer (12.75%). Moreover, even after 1000 h of storage in ambient atmosphere, the encapsulated TPSC maintains a remarkable 81% of its initial efficiency. This comprehensive study seamlessly integrates the synthesis of non‐fullerene n‐type semiconducting polymer and device fabrication, providing valuable insights into designing cutting‐edge ETL structure for inverted TPSCs.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai Municipality

Publisher

Wiley

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