Breaking Electronic Insulation of Monocyclic Aromatic Spacers via Hydrazide‐Induced Orbital Coupling in Ruddlesden‐Popper Perovskites

W Wenjuan Feng R Rui Wang Y Yangxingyu Ye (State Key Laboratory of Elemento‐Organic Chemistry, the Centre of Nanoscale Science Technology and Key Laboratory of Functional Polymer Materials, Frontiers Science Center for New Organic Matter, College of Chemistry Nankai University Tianjin China) Z Zhenyou Guo (State Key Laboratory of Elemento‐Organic Chemistry, the Centre of Nanoscale Science Technology and Key Laboratory of Functional Polymer Materials, Frontiers Science Center for New Organic Matter, College of Chemistry Nankai University Tianjin China) P Pengxi Wang Y Yulu Li Y Yu Chen Z Ziyang Hu (Department of Chemistry, The University of Hong Kong 1 , Pokfulam Road, Hong Kong,) Y Yongsheng Liu

Abstract

ABSTRACT Ruddlesden–Popper perovskites are promising photovoltaic materials because their enhanced structural and environmental stability relative to their three‐dimensional counterparts. However, weak interactions between organic spacer and the adjacent inorganic framework often undermine structural stability and impede charge transport. Here, we demonstrate that the hydrazide‐based spacer, thiophene‐2‐hydrazide (ThCH), unexpectedly induces strong interlayer orbital coupling in 2D RP perovskites despite its monocyclic aromatic structure. It is found that the hydrazide group extends electronic conjugation and promotes orbital hybridization between ThCH and the adjacent inorganic framework, a phenomenon not observed in conventional single‐ring aromatic spacers. This effect is further verified by benzo hydrazide, which shares a similar structural motif. Beyond promoting electronic coupling, the hydrazide functionality enhances film formation, yielding enhanced crystallization uniformity and facilitating efficient charge transport. Consequently, ThCH‐based RP perovskite (nominal n = 4) devices achieve record efficiencies of 22.41% (certified 21.74%, 0.074 cm 2 ) for small‐area devices and 20.74% (certified 20.01%, 1.015 cm 2 ) for large‐area devices, the highest reported for quasi‐2D RP PSCs. This study establishes a molecular design strategy that uses multifunctional hydrazide modules to overcome the electronic insulation of single‐ring aromatic spacers, enabling robust and efficient RP PSCs.

Article Details

Volume / Issue Vol. 65, Issue 26
Published June 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

W

Wenjuan Feng

R

Rui Wang

Y

Yangxingyu Ye

State Key Laboratory of Elemento‐Organic Chemistry, the Centre of Nanoscale Science Technology and Key Laboratory of Functional Polymer Materials, Frontiers Science Center for New Organic Matter, College of Chemistry Nankai University Tianjin China

Z

Zhenyou Guo

State Key Laboratory of Elemento‐Organic Chemistry, the Centre of Nanoscale Science Technology and Key Laboratory of Functional Polymer Materials, Frontiers Science Center for New Organic Matter, College of Chemistry Nankai University Tianjin China

P

Pengxi Wang

Y

Yulu Li

Y

Yu Chen

Z

Ziyang Hu

Department of Chemistry, The University of Hong Kong 1 , Pokfulam Road, Hong Kong,

Y

Yongsheng Liu