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July 15, 20250 citations

FeCu Dual-Single-Atom Catalyst Promotes Gradient H2O2 Activation for Enhanced Methane Oxidation to Methanol

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WWWenting WuHZHaonan ZhangSWShuai Wang

Key Points

  • The FeCu/ZSM-CI catalyst achieves a methanol yield of 20.20 mmol gcat−1 h−1 with 90.1% selectivity.
  • Differentiated reactive oxygen species evolve based on the spatial arrangement of Fe and Cu in the catalyst.
  • Mechanistic studies show the rate-determining step shifts to C-H bond activation through Fe-Cu interactions.
  • This research provides insights for designing advanced catalysts for selective hydrocarbon oxidation.

Abstract

Abstract Hydrogen peroxide is an attractive and sustainable oxidant, yet its effective application in inert alkane oxidation is limited by the inability to precisely match the distribution, concentration, and reactivity of generated oxygen species with substrate activation requirements. Herein, a dual single-atom catalyst, FeCu/ZSM-CI, in which atomically dispersed Fe and Cu are spatially separated within the microporous framework of ZSM-5, with Fe located in the inner channels and Cu on the external surface, thereby enabling a controlled H2O2 activation gradient. This spatial configuration induces differentiated reactive oxygen species evolution: high-valent Fe = O and •OOH species form in the interior to activate methane into CH3OOH, while surface Cu sites selectively convert CH3OOH into methanol, mitigating overoxidation pathways. The optimized FeCu/ZSM-CI catalyst achieves a methanol yield of 20.20 mmol gcat−1 h− 1 with 90.1% selectivity and a remarkable H2O2 utilization efficiency of 74.6%. Mechanistic studies combining kinetic isotope effects, scavenger assays, in-situ EPR/DRIFTS, and DFT calculations reveal that the rate-determining step shifts from H2O2 activation to C-H bond activation due to synergistic Fe-Cu interactions. These findings establish a generalizable strategy for manipulating ROS spatial distribution via dual single-atom engineering, offering new insights for designing advanced catalysts for selective hydrocarbon oxidation under ambient conditions.

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Cite This Study

Wu et al. (2025) studied this question.

synapsesocial.com/papers/689a02bce6551bb0af8cc704https://doi.org/10.21203/rs.3.rs-7017740/v1
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1FeCu dual-single-atom catalyst promotes gradient H2O2 activation for enhanced methane oxidation to methanol2026
  2. 2Highly Efficient Conversion of Methane to Methanol on Fe-Cu/ZSM-5 Under Mild Conditions: Effective Utilization of Free Radicals by Favorable Valence Ratios2025
  3. 3Enzyme-Mimicking Copper Single-Atom Catalyst for Selective Oxidation of Methane to Liquid Oxygenates2025
  4. 4Orchestrating Multi-Ångstrom Spaced Cu─Ni Dual-Atom Pair for Synergistic C─H Activation in Direct Methane Oxidation to Methanol.2025
  5. 5Atomically Dispersed Fe‐Cu Dual‐Metal Sites Synergistically Boost Carbonylation of Methane2024 · 3 citations