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Updated: Feb 1, 2026

Synthesis and Characterization of Functionalized Metal-organic Frameworks
Published on: September 5, 2014
Dynamic stretching beyond electron transfer in a homointerpenetrated metal‒organic framework for enhanced Fenton-like
Fei Wang1, Yu-Hang Li2, Fu-Xue Wang3
1Research Center of Environmental Functional Materials, Institute of Advanced Materials, Key Laboratory of Urban Stormwater System and Water Environment, Ministry of Education, Beijing University of Civil Engineering and Architecture, Beijing, PR China.
Abstract:
While extensive efforts have been devoted to enhancing electron transfer efficiency through metal valence cycling in heterogeneous Fenton-like reactions, the potential catalytic improvement induced by dynamic structural stretching remain unexplored. Here, we introduce a homointerpenetrated Fe-based metal‒organic framework (BUC-95) featuring a dynamic stretchable structure that significantly boosts the heterogeneous Fenton-like catalytic performance. BUC-95's unique stretchable structure achieved effective peroxydisulfate activation for degrading various micropollutants via Fe(IV) = O species, facilitated by a reduced energy barrier for Fe(IV) = O formation through modulation of the electron density at Fe sites. DFT calculations suggest that, compared with the isostructural analogue with hydrogen bond-restricted stretching, the flexible dynamic stretching in BUC-95 overcomes the inherent electron transfer limitations from Fe sites to peroxydisulfate, enhancing the ofloxacin degradation performance. Practically, BUC-95 demonstrated effective continuous-flow degradation and detoxification of micropollutants. This work establishes dynamic stretching as a crucial design principle for advancing environmental remediation materials and technologies.
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