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Three-dimensional interface engineering via CoMoO4@Co3O4 immobilized on nickel foam for sulfamethoxazole degradation with enhanced electron transfer and high-efficiency peroxymonosulfate activation

  • Hairui Li
  • , Jikai Liu
  • , Xiaoxue Zhang
  • , Wei Li
  • , Lifeng Liu
  • , Shiqi Wu
  • , Zhonghua Mou
  • , Mingxin Huang
  • , Zhaohui Wang
  • , Ruixia Yuan*
  • *此作品的通讯作者
  • Daqing Petroleum Institute
  • Oil and Gas Technology Research Institute of PetroChina Changqing Oilfield Branch

科研成果: 期刊稿件文章同行评审

摘要

This work elucidated the mechanism of the heterojunction structure in bolstering peroxymonosulfate (PMS) adsorption and reducing the energy barrier for electron transfer. A three-dimensional interface engineering via CoMoO4@Co3O4 immobilized on nickel foam (CoMoO4@Co3O4/NF) was designed and systematically analyzed using characterization, experimental, and calculation results. The CoMoO4@Co3O4/NF/PMS system could achieve 100 % sulfamethoxazole degradation within 10 min. Moreover, the catalyst exhibited exceptional activity (0.578 min−1), stability (maintaining > 95.1 % efficiency across pH 3.0–11.0), and facile recyclability (with 98.2 % removal after six cycles), which was further verified in continuous flow systems. Density functional theory calculations revealed the robust built-in electric field at the CoMoO4@Co3O4 interface, enabling the rapid and efficient migration of electrons to activate PMS for producing more reactive oxygen species (primarily SO4•− and 1O2). This work underscores the significance of interface engineering in designing efficient catalysts for practical environmental applications and provides a promising solution for sustainable wastewater treatment.

源语言英语
文章编号125453
期刊Applied Catalysis B: Environmental
376
DOI
出版状态已出版 - 5 11月 2025

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