表面改性
活性氧
单线态氧
激进的
纳米孔
纳米材料
材料科学
薄膜
纳米技术
化学工程
氧气
化学
光化学
有机化学
工程类
生物化学
作者
Paula Navascués,Flaela Kalemi,Flavia Zuber,Philipp Meier,Ludovica M. Epasto,Monika Góra,Barbara Hanselmann,Svetlana Kucher,Enrica Bordignon,Qun Ren,Giacomo Reina,Dirk Hegemann
出处
期刊:Small
[Wiley]
日期:2025-07-11
卷期号:21 (35): e2502311-e2502311
标识
DOI:10.1002/smll.202502311
摘要
Abstract Reactive oxygen species (ROS) are promising green candidates for tackling challenges ranging from antimicrobial resistance to water decontamination. Metal oxide nanomaterials structured as thin films, deposited at room temperature (RT) using plasma technology, can deliver ROS to the environment by catalyzing oxygen and water following a chemodynamics approach. This study proposes thin film plasma polymerization as a strategy to precisely control ROS delivery, unravel ROS formation mechanism at the catalytic interface, and ensure ROS‐driven chemistry. A proper combination of semiconductors, specifically silver oxide and titanium oxide, is used as a model system for ROS production. This specific coupling of semiconductors produces ROS in the dark due to charge separation without ion leaching. Plasma surface functionalization with nanoporous SiOx‐like films in the 1–100 nm range allows selective control of the delivery of radicals with different characteristic lifetimes such as superoxide anion and singlet oxygen based on the thickness of the functional layer. As proof of promising applications, results regarding radicals' detection are correlated with the antimicrobial activity of the ROS‐releasing system. Thin film plasma surface functionalization allows control of ROS delivery, ensuring that the material efficacy is due to ROS and not by other direct redox chemistry or leaching processes.
科研通智能强力驱动
Strongly Powered by AbleSci AI