Self‐Polymerized Spiro‐Type Interfacial Molecule toward Efficient and Stable Perovskite Solar Cells

Author:

Tian Qiushuang1,Chang Jingxi1,Wang Junbo1,He Qingyun1,Chen Shaoyu1,Yang Pinghui1,Wang Hongze1,Lai Jingya1,Wu Mengyang1,Zhao Xiangru1,Zhong Chongyu1,Li Renzhi1,Huang Wei12,Wang Fangfang1ORCID,Yang Yingguo3,Qin Tianshi12ORCID

Affiliation:

1. Institute of Advanced Materials (IAM) and Key Laboratory of Flexible Electronics (KLOFE) Nanjing Tech University Jiangsu 210009 China

2. School of Flexible Electronics (SoFE) & State Key Laboratory of Optoelectronic Materials and Technologies (OEMT) Sun Yat-sen University Guangdong 510275 China

3. School of Microelectronics Fudan University Shanghai 200433 China

Abstract

AbstractIn the pursuit of highly efficient perovskite solar cells, spiro‐OMeTAD has demonstrated recorded power conversion efficiencies (PCEs), however, the stability issue remains one of the bottlenecks constraining its commercial development. In this study, we successfully synthesize a novel self‐polymerized spiro‐type interfacial molecule, termed v‐spiro. The linearly arranged molecule exhibits stronger intermolecular interactions and higher intrinsic hole mobility compared to spiro‐OMeTAD. Importantly, the vinyl groups in v‐spiro enable in situ polymerization, forming a polymeric protective layer on the perovskite film surface, which proves highly effective in suppressing moisture degradation and ion migration. Utilizing these advantages, poly‐v‐spiro‐based device achieves an outstanding efficiency of 24.54 %, with an enhanced open‐circuit voltage of 1.173 V and a fill factor of 81.11 %, owing to the reduced defect density, energy level alignment and efficient interfacial hole extraction. Furthermore, the operational stability of unencapsulated devices is significantly enhanced, maintaining initial efficiencies above 90 % even after 2000 hours under approximately 60 % humidity or 1250 hours under continuous AM 1.5G sunlight exposure. This work presents a comprehensive approach to achieving both high efficiency and long‐term stability in PSCs through innovative interfacial design.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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