A Redox‐Active Mesoporous Cobalt–Pyrazolate Framework for Reversible O <sub>2</sub> Sorption

Y Yong‐Zheng Zhang (Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China) T Tao He (Department of Chemical Science, Bernal Institute) X Xiang‐Jing Kong (Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China) Y Yingjie Wang L Lin‐Hua Xie (Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China) J Jian‐Rong Li (Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China)

Abstract

Abstract Expanding pyrazolate metal–organic frameworks (MOFs) beyond microporous architectures is a formidable synthetic challenge, as the strong and directional M–N bonds impose strict geometric constraints that hinder the integration of mesoporosity and active sites. Such limitations have restricted the structural diversity of pyrazolate MOFs compared with their carboxylate analogues, despite the former offering superior chemical stability and fantastic performance in gas storage, separation, and catalysis. Here we present mesoporous BUT‐45 as the first example of csq ‐type pyrazolate MOF, which was constructed from the low‐symmetry (C s ) tetra‐pyrazolate ligand 1,3,6,8‐tetra(1 H ‐pyrazolate‐4‐yl)‐9 H ‐carbazole (CTP 4– ) and 8‐connected Co 6 clusters (D 2h ). Interestingly, the presence of rich active Co sites enables instantaneous O 2 chemisorption at ambient temperature in BUT‐45, and good framework stability allows this process to be fully reversible. Single‐crystal x‐ray diffraction and in situ spectroscopy analyses provide structural insights into the as‐synthesized, O 2 ‐loaded, and regenerated phases, revealing the mechanism of Co–O 2 adduct formation and demonstrating complete reversibility via hydrazine hydrate reduction. This work highlights how reticular chemistry can map target nets from carboxylate to pyrazolate, while offering desired properties and direct visualization of redox chemistry in MOFs.

Article Details

Volume / Issue Vol. 65, Issue 12
Published March 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

Y

Yong‐Zheng Zhang

Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China

T

Tao He

Department of Chemical Science, Bernal Institute

X

Xiang‐Jing Kong

Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China

Y

Yingjie Wang

L

Lin‐Hua Xie

Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China

J

Jian‐Rong Li

Department of Chemical Engineering College of Materials Science and Engineering Beijing University of Technology Beijing 100124 China