Localized Electrostatic Interaction Stabilize Perovskite Solar Cells

K Kailin Li (School of Materials Science and Engineering) Z Zijian Huang H Huachao Zai (State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering) Z Zhongyang Zhang F Feng Wang X Xiao Zhu (School of Materials Science and Technology) Y Yuetong Wu Y Yu Zhang (Xiangya Hospital, Central South University Changsha China) F Fengtao Pei (School of Materials Science and Engineering) R Rundong Fan X Xiuxiu Niu (School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 P. R. China) Y Yanrun Chen (Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials Key Laboratory of Polymer Chemistry and Physics of Ministry of Education State Key Laboratory of Advanced Waterproof Materials School of Materials Science and Engineering Peking University Beijing 100871 P. R. China) H Huifen Liu (Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials Key Laboratory of Polymer Chemistry and Physics of Ministry of Education State Key Laboratory of Advanced Waterproof Materials School of Materials Science and Engineering Peking University Beijing 100871 P. R. China) R Ruiyang Yin (School of Materials Science and Engineering) X Xinmeng Zhuang (School of Materials Science and Engineering) J Julian A. Steele C Cheng Zhu (School of Interdisciplinary Sciences, State Key Laboratory of Environment Characteristics and Effects for Near-Space) Y Yihua Chen T Tinglu Song (Experimental Center of Advanced Materials, School of Materials Science and Engineering) Q Qi Chen H Huanping Zhou

Abstract

Abstract Metal halide perovskite solar cells (PSCs) have shown great promise for commercialization, yet the weak bonding nature of perovskites renders them vulnerable to external stimuli, undermining the operational longevity of PSCs. Methods aimed at strengthening bonding within perovskite constituents still failed to realize both “high efficiency” and “high stability” in single device. Herein, a localized electrostatic interaction strategy is proposed by employing an unexplored and well‐designed organic cation, tetramethyldipropylene‐triammonium (IDPA 3+ ). IDPA 3+ features sterically constrained multi‐interaction sites that enable strong localized electrostatic interactions with [PbI 6 ] 4− octahedra, inducing perovskite lattice compression. This compression improves perovskite lattice energy through strengthened chemical bonding within bulk lattice, ultimately reinforcing structural stability while simultaneously suppressing ion migration. Consequently, modified formamidinium lead iodide (FAPbI 3 ) devices displayed state‐of‐the‐art stability, showing negligible performance loss under continuous operation at 85 °C and damp‐heat test. Notably, the p‐i‐n device achieved a certified power conversion efficiency (PCE) of 25.28% for 1.00 cm 2 , among the highest published certified PCEs. Overall, this work presents localized electrostatic interaction engineering as a promising strategy to intrinsically stabilize perovskite microstructure, bridging the gap between electrostatic regulation and structural stability while highlighting the broader potential of other triply‐charged organic molecules for advancing stable PSCs and optoelectronic devices.

Article Details

Volume / Issue Vol. 38, Issue 7
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (21)

K

Kailin Li

School of Materials Science and Engineering

Z

Zijian Huang

H

Huachao Zai

State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering

Z

Zhongyang Zhang

F

Feng Wang

X

Xiao Zhu

School of Materials Science and Technology

Y

Yuetong Wu

Y

Yu Zhang

Xiangya Hospital, Central South University Changsha China

F

Fengtao Pei

School of Materials Science and Engineering

R

Rundong Fan

X

Xiuxiu Niu

School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 P. R. China

Y

Yanrun Chen

Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials Key Laboratory of Polymer Chemistry and Physics of Ministry of Education State Key Laboratory of Advanced Waterproof Materials School of Materials Science and Engineering Peking University Beijing 100871 P. R. China

H

Huifen Liu

Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials Key Laboratory of Polymer Chemistry and Physics of Ministry of Education State Key Laboratory of Advanced Waterproof Materials School of Materials Science and Engineering Peking University Beijing 100871 P. R. China

R

Ruiyang Yin

School of Materials Science and Engineering

X

Xinmeng Zhuang

School of Materials Science and Engineering

J

Julian A. Steele

C

Cheng Zhu

School of Interdisciplinary Sciences, State Key Laboratory of Environment Characteristics and Effects for Near-Space

Y

Yihua Chen

T

Tinglu Song

Experimental Center of Advanced Materials, School of Materials Science and Engineering

Q

Qi Chen

H

Huanping Zhou