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Oxygen-vacancy-mediated silver release from mesoporous CeO2 for durable antimicrobial coatings

  • Hui Yan
  • , Jiahui Li
  • , Jiahua Jiang
  • , Khalil Ullah
  • , Haiping Zhang*
  • , Yuanyuan Shao
  • , Yingchun Liu
  • , Hui Zhang
  • , Chunbao Xu
  • , Jesse Zhu
  • *Corresponding author for this work

Research output: Journal PublicationArticlepeer-review

Abstract

Silver ions (Ag+) have been widely used in the prevention and control of bacterial infections due to their excellent broad-spectrum antimicrobial properties. However, Ag+ tends to undergo rapid release in complex physiological environments, which limits its long-term application. To address these challenges, this study developed a novel Ag-loaded porous ceria (CeO2) composite. The abundant oxygen vacancies and porous structure of CeO2 not only provide a uniform loading platform for silver nanoparticles, but also effectively promote the conversion of Ag0 to Ag+. By establishing an in vitro release and antimicrobial kinetics evaluation system, the relationship between Ag+ release behavior and antimicrobial performance was systematically analyzed. Combined with the synergistic ROS generation mechanism of CeO2/Ag, a complete synergistic antimicrobial pathway is constructed. The results demonstrated that mesoporous CeO2 can regulate Ag+ release, achieving a favorable balance between antimicrobial efficacy and durability. Furthermore, the integration of the CeO2/Ag composite into a powder coating system highlighted its potential for antimicrobial surface. This work provides a new strategy for designing functional materials with long-term and stable antimicrobial properties.

Original languageEnglish
Article number140339
JournalJournal of Colloid and Interface Science
Volume716
DOIs
Publication statusPublished - 15 Aug 2026

Free Keywords

  • Ag release
  • Antimicrobial durability coating
  • Oxygen vacancy
  • Porous CeO

ASJC Scopus subject areas

  • Electronic, Optical and Magnetic Materials
  • Biomaterials
  • Surfaces, Coatings and Films
  • Colloid and Surface Chemistry

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