A Multidentate Coordination Complex‐Based Self‐Assembled Monolayer Stabilizes Perovskite Interface

H Houen Wu (State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China) C Chen Lu Z Zhen‐Yang Suo (State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China) X Xijiao Mu (State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China) J Junhong Hao J Jing Cao Y Yongping Yang

Abstract

ABSTRACT Self‐assembled monolayers (SAMs) have emerged as promising hole‐selective contacts for buried‐interface engineering in inverted perovskite photovoltaics. However, most reported SAMs rely on a single phosphonic‐acid anchoring group, which is prone to desorption during device fabrication and operation. In addition, their limited affinity for perovskite precursors often leads to poor wettability and non‐ideal interfacial film formation. Here, we report a multidentate Fe(III) porphyrin complex as a co‐SAM component that simultaneously reinforces substrate anchoring and promotes interfacial coupling with the perovskite, thereby stabilizing the buried interface. The four phosphonic‐acid groups on porphyrin enable robust tetradentate chelation with the oxide substrate, increasing the adsorption energy by more than threefold. Meanwhile, the Fe center stabilizes the axial chloride ligand, which interacts with perovskite precursor, increases the apparent surface energy by ∼30%, and reduces the contact angle by ∼40%, thereby promoting high‐quality perovskite crystallization. As a result, small‐area devices achieve a power conversion efficiency of 27.06% (certified 26.82%), while perovskite modules deliver 24.1% efficiency over a 21.54 cm 2 aperture area, together with substantially improved operational stability. These results establish coordination‐complex‐based SAMs as an effective platform for stabilizing buried interfaces in perovskite photovoltaics.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

H

Houen Wu

State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China

C

Chen Lu

Z

Zhen‐Yang Suo

State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China

X

Xijiao Mu

State Key Laboratory of Natural Product Chemistry Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province College of Chemistry and Chemical Engineering Lanzhou University Lanzhou P. R. China

J

Junhong Hao

J

Jing Cao

Y

Yongping Yang