Heteronuclear MOF Heterostructures Based on Identical Auxiliary‐Ligand Bridging for Multi‐Function‐Integrated Photonic Devices

Q Qianni Peng Z Zhuoyan Dong (Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China) Y Yixin Chen D Difeng Yang (Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China) G Gaoyan Lan (Fujian Provincial Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China) S Shengchang Xiang (Fujian Normal University , , ,) Y Yuanchao Lv (Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China) B Banglin Chen Z Zhangjing Zhang

Abstract

ABSTRACT Metal‐organic framework (MOF) heterostructures with multi‐segmented emission and integrated responsiveness hold great potential application in integrated photonic devices, yet reported MOF heterostructures always focus on the assembly of homologous chromophore ligands with similar energy levels, restricting their further function integration. Herein, the first heteronuclear MOF heterostructure is reported based on an identical auxiliary‐ligand bridging strategy towards multi‐function‐integrated photonic devices. Designed ligands with distinct chromophore structures were epitaxially assembled by identical auxiliary‐ligand bridging method to construct the heteronuclear MOF heterostructures. Distinct chromophore structures of ligands endow each MOF block with different energy‐level structures, which generate disparate photon‐responsive behaviors and gain processes in different individual regions. On the basis, the heteronuclear MOF heterostructure can simultaneously integrate different photonic functionalities, including narrow‐band light sources, optical modulation and optical waveguides, which further functions as a prototype of integrated photonic circuit with dynamic logic gate operation. These results offer a novel strategy for the development of MOF heterostructures for multifunctional integrated photonic devices.

Article Details

Volume / Issue Vol. 38, Issue 44
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

Q

Qianni Peng

Z

Zhuoyan Dong

Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China

Y

Yixin Chen

D

Difeng Yang

Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China

G

Gaoyan Lan

Fujian Provincial Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China

S

Shengchang Xiang

Fujian Normal University , , ,

Y

Yuanchao Lv

Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou China

B

Banglin Chen

Z

Zhangjing Zhang