Symmetry‐Breaking Strategy Yields Dopant‐Free Small Molecule Hole Transport Materials for Inorganic Perovskite Solar Cells with 20.58% Efficiency and Outstanding Stability

H Huimin Cai Q Qiliang Zhu T Tianchen Pan (Advanced Materials Thrust Function Hub The Hong Kong University of Science and Technology (Guangzhou), Nansha Guangzhou 511400 P.R. China) L Lunbi Wu X Xin Gu (Department of Cardiology, The Affiliated Hospital of Jiangnan University) C Chenghao Duan (Department of Chemistry) L Liangbin Xiong (School of Optoelectronic Engineering Guangdong Polytechnic Normal University Guangzhou 510665 P.R. China) J Jiaying Wu S Sha Liu L LiYang Yu R Ruipeng Li (National Synchrotron Light Source II) K Keyou Yan R Ruijie Ma S Shengjian Liu (School of Chemistry, Guangzhou Key Laboratory of Materials for Energy Conversion and Storage, Key Laboratory of Electronic Chemicals for Integrated Circuit Packaging) T Tao Jia (School of Chemistry and Chemical Engineering) G Gang Li (State Key Laboratory of Molecular Reaction Dynamics and Dalian Coherent Light Source Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, China)

Abstract

AbstractInorganic perovskites are known for their excellent photothermal stability; however, the photothermal stability of all‐inorganic n‐i‐p perovskite solar cells (PSCs) is compromised due to ion diffusion and free radical‐induced degradation caused by the use of doped spiro‐OMeTAD hole transport materials (HTMs). In this study, two isomeric donor–acceptor–donor (D–A–D) type small molecules, namely HBT and HiBT, were developed and used as dopant‐free HTMs, using 2,1,3‐benzothiadiazole or benzo[d][1,2,3]thiadiazole as acceptor moieties. The HiBT molecule, with its symmetry‐breaking features, exhibits a large dipole moment, enhanced coordination‐active sites, and a well‐aligned energy level structure, all of which contribute to passivating perovskite surface defects and improving free charge separation. As a result, inorganic CsPbI3 PSCs with HiBT HTM achieved an impressive power conversion efficiency (PCE) of 20.58%, the highest reported for dopant‐free HTM‐based inorganic PSCs. Moreover, the enhanced hydrophobic properties of HiBT molecules, coupled with their ability to passivate perovskite surface defects, contribute to significantly improved device stability. The unencapsulated devices based on HiBT HTM retained over 83% and 80% of their initial efficiency after being stored at 85 °C for 50 days and undergoing maximum power point (MPP) tracking at 85 °C for 1100 h, respectively. These results highlight that the symmetry‐breaking strategy is an exceptionally effective approach for designing efficient, dopant‐free small molecule HTMs, significantly contributing to both the high efficiency and enhanced stability of all‐inorganic PSCs.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (16)

H

Huimin Cai

Q

Qiliang Zhu

T

Tianchen Pan

Advanced Materials Thrust Function Hub The Hong Kong University of Science and Technology (Guangzhou), Nansha Guangzhou 511400 P.R. China

L

Lunbi Wu

X

Xin Gu

Department of Cardiology, The Affiliated Hospital of Jiangnan University

C

Chenghao Duan

Department of Chemistry

L

Liangbin Xiong

School of Optoelectronic Engineering Guangdong Polytechnic Normal University Guangzhou 510665 P.R. China

J

Jiaying Wu

S

Sha Liu

L

LiYang Yu

R

Ruipeng Li

National Synchrotron Light Source II

K

Keyou Yan

R

Ruijie Ma

S

Shengjian Liu

School of Chemistry, Guangzhou Key Laboratory of Materials for Energy Conversion and Storage, Key Laboratory of Electronic Chemicals for Integrated Circuit Packaging

T

Tao Jia

School of Chemistry and Chemical Engineering

G

Gang Li

State Key Laboratory of Molecular Reaction Dynamics and Dalian Coherent Light Source Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, China