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February 2, 2026Nature Communications9 citationsOpen Access

Dynamic stretching beyond electron transfer in a homointerpenetrated metal‒organic framework for enhanced Fenton-like reactions

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FWFei WangYLYanfang LiFWFu-Xue Wang

Key Points

  • The aim is to explore how dynamic structural stretching in a metal-organic framework improves electron transfer in Fenton-like reactions.
  • Developed a homointerpenetrated Fe-based metal-organic framework (BUC-95) with dynamic stretching.
  • Conducted DFT calculations to analyze electron transfer dynamics.
  • Evaluated catalytic performance through continuous-flow degradation of micropollutants.
  • BUC-95 showed significantly boosted catalytic performance in Fenton-like reactions.
  • Dynamic structure reduced energy barriers for effective peroxydisulfate activation.
  • Enhanced degradation of micropollutants like ofloxacin was achieved.

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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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6980fe7cc1c9540dea810912https://doi.org/10.1038/s41467-026-68917-z
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