Interface Molecular Locking Synergized with Self‐Assembled Monolayers for Efficient Perovskite Solar Cells

X Xiang He (Anhui iAmetal New Energy Technology Co.,Ltd) S Shantao Zhang (State Key Laboratory of Precision and Intelligent Chemistry, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Materials Science and Engineering University of Science and Technology of China Hefei 230026 China) Q Qi Wang Y Yutong Ma (Center for Advanced Structural Materials, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University 1 , Qinhuangdao 066004,) C Chunyu Zhang Y Yajuan Li (Department of Bioengineering, University of California at San Diego) N Nan Hu X Xuefei Weng (i‐lab, Vacuum Interconnected Nanotech Workstation, Chinese Academy of Sciences Suzhou Institute of Nano‐Tech and Nano‐Bionics Suzhou 215123 China) T Tao Chen Z Zhimin Fang (State Key Laboratory of Precision and Intelligent Chemistry, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Materials Science and Engineering University of Science and Technology of China Hefei 230026 China) J Junfa Zhu (National Synchrotron Radiation Laboratory) X Xiong Li C Chang‐Qi Ma (i‐lab, Vacuum Interconnected Nanotech Workstation, Chinese Academy of Sciences Suzhou Institute of Nano‐Tech and Nano‐Bionics Suzhou 215123 China) S Shengzhong (Frank) Liu (Institute For Advanced Energy Materials School of Materials Science and Engineering Shaanxi Normal University Xi'an China) S Shangfeng Yang Y Yi Cui

Abstract

Abstract The uniformity of self‐assembled monolayers (SAMs) and the interfacial defects in perovskite films significantly affect the performance of inverted perovskite solar cells (IPSCs). Herein, we develop an innovative interface molecular locking (IML) strategy synergized with SAMs to enhance the properties of buried interface. Specifically, two SAMs—(4‐(3,6‐dimethoxy‐9H‐carbazol‐9‐yl)phenyl)phosphonic acid (MeO‐PhPACz) and 5‐indoleboronic acid (5‐IBA)—are employed to combine their advantages and form an enhanced SAM (E‐SAM). Due to the strong π–π interactions between MeO‐PhPACz and 5‐IBA, the E‐SAM exhibits a denser and more uniform morphological coverage. Introducing thiabendazole (TBZ) additive into the perovskite precursor further ameliorates the buried interface properties through its self‐assembly behavior, owing to its large molecular dipole moment and strong interactions with the E‐SAM. This strategy not only achieves favorable energy level alignment but also improves the crystallinity and reduces the trap density of perovskite films, thereby significantly enhancing hole extraction and suppressing non‐radiative recombination. Consequently, both (FA 0.95 MA 0.05 ) 0.95 Cs 0.05 Pb(I 0.95 Br 0.05 ) 3 and FA 0.95 Cs 0.05 PbI 3 ‐based IPSCs achieve high efficiencies exceeding 26.0%, along with significantly enhanced stability. Notably, (FA 0.95 MA 0.05 ) 0.95 Cs 0.05 Pb(I 0.95 Br 0.05 ) 3 solar cells deliver a high voltage of 1.21 V, one of the highest reported among IPSCs with a 1.56 eV bandgap. Our findings provide unique insights into achieving high‐performance IPSCs by synergistically engineering buried interface.

Article Details

Volume / Issue Vol. 65, Issue 6
Published February 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (16)

X

Xiang He

Anhui iAmetal New Energy Technology Co.,Ltd

S

Shantao Zhang

State Key Laboratory of Precision and Intelligent Chemistry, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Materials Science and Engineering University of Science and Technology of China Hefei 230026 China

Q

Qi Wang

Y

Yutong Ma

Center for Advanced Structural Materials, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University 1 , Qinhuangdao 066004,

C

Chunyu Zhang

Y

Yajuan Li

Department of Bioengineering, University of California at San Diego

N

Nan Hu

X

Xuefei Weng

i‐lab, Vacuum Interconnected Nanotech Workstation, Chinese Academy of Sciences Suzhou Institute of Nano‐Tech and Nano‐Bionics Suzhou 215123 China

T

Tao Chen

Z

Zhimin Fang

State Key Laboratory of Precision and Intelligent Chemistry, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), Department of Materials Science and Engineering University of Science and Technology of China Hefei 230026 China

J

Junfa Zhu

National Synchrotron Radiation Laboratory

X

Xiong Li

C

Chang‐Qi Ma

i‐lab, Vacuum Interconnected Nanotech Workstation, Chinese Academy of Sciences Suzhou Institute of Nano‐Tech and Nano‐Bionics Suzhou 215123 China

S

Shengzhong (Frank) Liu

Institute For Advanced Energy Materials School of Materials Science and Engineering Shaanxi Normal University Xi'an China

S

Shangfeng Yang

Y

Yi Cui