Linker‐Enabled Self‐Nitridation and Multistep Pyrolysis Pathways of Cu–Triazolate MOFs Toward Cu <sub>3</sub> N/Carbon Fibers

C Chi Song (School of Materials and Energy Guangdong University of Technology Guangzhou Guangdong China) J Junzhen Wei (School of Materials and Energy Guangdong University of Technology Guangzhou Guangdong China) G Guangxue Feng Z Zhehao Sun (Research School of Chemistry) Y Yinuo Wang X Xuan Yang J Jiayi Wang Y Yanghe Wang Z Zongyou Yin (Research School of Chemistry) C Changjian Li (Department of Chemical Engineering) A Anthony K. Cheetham (Department of Materials, Materials Research Laboratory) Y Yating Hu

Abstract

ABSTRACT Metal–organic framework (MOF) pyrolysis is widely used to produce functional nanomaterials, yet it is still commonly regarded as a simple thermal decomposition or templating process. Here, we show that a Cu(II)–1,2,3‐triazolate (trz) MOF functions as a nanoreactor in which intrinsic metal–linker chemistry governs the evolution of both phase and morphology. Strikingly, the triazole ring remains preserved throughout the pre‐pyrolysis phase transitions that lead to the formation of Cu atomic clusters. These highly reactive Cu clusters and the preserved triazolate are essential for the subsequent formation of metal nitride, as they enable efficient nitridation at an unusually low temperature. Without introducing any external nitrogen source, the Cu clusters react with NH 3 released from linker decomposition, leading to the formation of Cu 3 N rather than crystallization into metallic Cu particles. By combining in situ and ex situ characterization, we show that copper, nitrogen species, and the carbonizing matrix evolve sequentially rather than independently. As a result, Cu 3 N is selectively stabilized over metallic Cu within a fibrous N‐doped carbon network. Beyond offering a self‐nitridation route to Cu 3 N, this work highlights the critical role of transient intermediates in directing MOF pyrolysis outcomes and redefines MOF pyrolysis as a chemically interactive process.

Article Details

Volume / Issue Vol. 65, Issue 30
Published July 20, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

C

Chi Song

School of Materials and Energy Guangdong University of Technology Guangzhou Guangdong China

J

Junzhen Wei

School of Materials and Energy Guangdong University of Technology Guangzhou Guangdong China

G

Guangxue Feng

Z

Zhehao Sun

Research School of Chemistry

Y

Yinuo Wang

X

Xuan Yang

J

Jiayi Wang

Y

Yanghe Wang

Z

Zongyou Yin

Research School of Chemistry

C

Changjian Li

Department of Chemical Engineering

A

Anthony K. Cheetham

Department of Materials, Materials Research Laboratory

Y

Yating Hu