Simple‐Synthesis Isomer‐Free Multi‐Adduct Fullerenes as Electron Transport Materials Enable 26.66% Efficiency of Perovskite Solar Cells

ABSTRACT The laggard advancement in electron transport layer materials is one of the bottleneck problems, impeding the further improvement of photovoltaic performance of perovskite solar cells (PSCs). Fullerene derivatives are widely used as electron transport layer materials for PSCs, but significant imperfections remain unresolved. Herein, an efficient and facile method was developed to prepare isomer‐free multi‐adduct fullerene derivatives, C 60 (NHR) 4 O, with high yield and meet the multifunctional requirements of electron transport layer materials of PSCs. Among the multi‐adduct fullerene derivatives, tetra[methyl 2‐amino‐3‐(thiophen‐2‐yl)propanoate]C 60 epoxide (TATPC) was selected to incorporate into PCBM as an electron transport material for PSCs. Benefiting from multi‐adduct groups, TATPC presents a higher LUMO energy level, superior passivation capability, and stronger interaction with perovskite than the classical PCBM. It enables PCBM:TATPC to afford improved coverage and a smoother surface, increased contact potential difference, reduced trap density, higher electron mobility, and inhibited self‐aggregation, thus facilitating electron extraction, suppressing charge carrier recombination, and enhancing durability for PSCs. Therefore, PCBM:TATPC‐based PSCs achieve an impressive efficiency of 26.66% (25.81% for devices with an area of 1.04 cm 2 ) with enhanced operational stability. This work highlights an efficient molecular design strategy to develop isomer‐free multi‐adduct fullerenes and thus regulate the electron transport layer for high‐efficiency and stable PSCs.

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Publication Details

Journal
Angewandte Chemie
Published
2026-06-07
DOI
https://doi.org/10.1002/ange.4500167
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Simple‐Synthesis Isomer‐Free Multi‐Adduct Fullerenes as Electron Transport Materials Enable 26.66% Efficiency of Perovskite Solar Cells

陈云浪, 王春儒, Xinying Ruan, Yamin Li et al.
Angewandte Chemie
Perovskite Materials and Applications
article

Simple‐Synthesis Isomer‐Free Multi‐Adduct Fullerenes as Electron Transport Materials Enable 26.66% Efficiency of Perovskite Solar Cells

陈云浪, 王春儒, Xinying Ruan, Yamin Li, Bo Li, Jiao Li, Yi-Xiang Wang, Xiaolong Liu, Libin Yang, Dan He, Jie Li, Fuwen Zhao, Zonghao Liu
article en

Abstract

ABSTRACT The laggard advancement in electron transport layer materials is one of the bottleneck problems, impeding the further improvement of photovoltaic performance of perovskite solar cells (PSCs). Fullerene derivatives are widely used as electron transport layer materials for PSCs, but significant imperfections remain unresolved. Herein, an efficient and facile method was developed to prepare isomer‐free multi‐adduct fullerene derivatives, C 60 (NHR) 4 O, with high yield and meet the multifunctional requirements of electron transport layer materials of PSCs. Among the multi‐adduct fullerene derivatives, tetra[methyl 2‐amino‐3‐(thiophen‐2‐yl)propanoate]C 60 epoxide (TATPC) was selected to incorporate into PCBM as an electron transport material for PSCs. Benefiting from multi‐adduct groups, TATPC presents a higher LUMO energy level, superior passivation capability, and stronger interaction with perovskite than the classical PCBM. It enables PCBM:TATPC to afford improved coverage and a smoother surface, increased contact potential difference, reduced trap density, higher electron mobility, and inhibited self‐aggregation, thus facilitating electron extraction, suppressing charge carrier recombination, and enhancing durability for PSCs. Therefore, PCBM:TATPC‐based PSCs achieve an impressive efficiency of 26.66% (25.81% for devices with an area of 1.04 cm 2 ) with enhanced operational stability. This work highlights an efficient molecular design strategy to develop isomer‐free multi‐adduct fullerenes and thus regulate the electron transport layer for high‐efficiency and stable PSCs.

Angewandte Chemie
Central South University (CN), Beijing VDJBio (China) (CN), Beijing National Laboratory for Molecular Sciences (CN), Wuhan National Laboratory for Optoelectronics (CN), National Center for Nanoscience and Technology (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 10%
Perovskite Materials and Applications
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