Multidentate Molecular Suturing at Dual Interfaces Enables Highly Efficient Perovskite Light‐Emitting Diodes

X Xiaojuan Cao X Xuan Wang G Guoyi Chen H Huimin Yang (State Key Laboratory of Coal Conversion, Institute of Coal Chemistry) Y Yongkang Tang (School of Electronics and Electrical Engineering and State Key Laboratory of New Textile Materials and Advanced Processing Wuhan Textile University Wuhan China) Z Zhiqiu Yu S Shengjie Du (Key Laboratory of Artificial Micro/Nano Structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan China) A Ao Zhou S Shuxin Wang J Jian Xiao C Chaomin Dong (Key Laboratory of Artificial Micro/Nano Structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan China) H Haibing Wang X Xuzhi Hu (Shandong Laboratory of Advanced Materials and Green Manufacturing at Yantai) C Chen Wang C CHEN TAO S Songzhan Li W Weijun Ke H Hongwei Lei G Guojia Fang F Fang Yao

Abstract

ABSTRACT Perovskite light‐emitting diodes (PeLEDs) have emerged as a promising technology for future displays owing to their prominent optoelectronic properties. However, inefficient charge injection and nonradiative recombination at the interfaces, alongside defective crystal growth, remain the primary bottlenecks for efficient LED devices. Herein, we propose a “molecular suturing” strategy that synchronously stabilizes the interface and directs crystal growth using a multifunctional ligand. We employ methyl bis(2,2,2‐trifluoroethyl) phosphonoacetate (MBTPA), which features cooperative carbonyl (C = O), phosphoryl (P = O), and trifluoromethyl (─CF 3 ) groups. The C = O and P = O groups chemically bind to defect sites, forming coordination interactions with undercoordinated Pb 2+ and halide vacancies. Concurrently, the ─CF 3 moieties establish robust hydrogen‐bond interactions with hole injection layer. By providing these two complementary interactions on opposite sides, MBTPA effectively “sutures” the buried interface between the perovskite and the hole‐transport layer, strengthening interfacial adhesion and promoting more efficient hole injection. Consequently, MBTPA‐modified PeLEDs achieve bright blue emission at 485 nm with a peak external quantum efficiency (EQE) of 23.14%, and green emission at 513 nm with a peak EQE of 27.05%. This molecular suturing strategy provides an effective route for simultaneous control of interfacial chemistry and crystallization, offering a generalizable approach for performance enhancement in perovskite optoelectronic devices.

Article Details

Volume / Issue Vol. 65, Issue 16
Published April 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (20)

X

Xiaojuan Cao

X

Xuan Wang

G

Guoyi Chen

H

Huimin Yang

State Key Laboratory of Coal Conversion, Institute of Coal Chemistry

Y

Yongkang Tang

School of Electronics and Electrical Engineering and State Key Laboratory of New Textile Materials and Advanced Processing Wuhan Textile University Wuhan China

Z

Zhiqiu Yu

S

Shengjie Du

Key Laboratory of Artificial Micro/Nano Structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan China

A

Ao Zhou

S

Shuxin Wang

J

Jian Xiao

C

Chaomin Dong

Key Laboratory of Artificial Micro/Nano Structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan China

H

Haibing Wang

X

Xuzhi Hu

Shandong Laboratory of Advanced Materials and Green Manufacturing at Yantai

C

Chen Wang

C

CHEN TAO

S

Songzhan Li

W

Weijun Ke

H

Hongwei Lei

G

Guojia Fang

F

Fang Yao