单线态氧
催化作用
吸附
化学工程
活性氧
碳纳米管
微塑料
化学
光化学
异质结
氧气
材料科学
锌
矿化(土壤科学)
纳米技术
共价键
碳纤维
光催化
表面电荷
析氧
焊剂(冶金)
氮化物
多相催化
氮化碳
纳米颗粒
聚合物
作者
Zhiyang Li,Wei Ai,Jianqiao Zhang,Aziz-Ur-Rahim Bacha,Weijun Chen,Yanming Wang,Yan Li,Yongmin Cao,Weibin Li,Lei Yang,Jun Ma
标识
DOI:10.1021/acs.est.6c06727
摘要
Abstract Efficient catalytic upcycling of microplastics (MPs) remains challenging due to uncontrolled reactive oxygen species (ROS) evolution pathways and the reliance on predepolymerization of MPs prior to catalytic conversion. Here, we demonstrate that interfacial band engineering in an iron-doped carbon nanotube (CNFe)-mediated zinc oxide/carbon nitride (ZnO/DCN-Cg, ZCN) heterojunction enables selective ROS steering toward a dominant nonradical pathway. The ZCNCNFe nanocomposite, featuring N–Zn bonding, C–O–Zn coordination, and C–C conjugation, provides a structurally integrated platform that dynamically regulates interfacial charge transfer during peroxymonosulfate activation, resulting in singlet oxygen (1O2) as the dominant ROS with a high yield (67.71 μmol/L). Notably, real-world HDPE MPs (∼700 mg), directly extracted from commercial facial cleansers via a novel dual-density separation method, were selectively oxidized into oxygenated intermediates (e.g., carboxylic acids and esters) without any predepolymerization, rather than being fully mineralized (∼39.2 wt % weight loss, TOC = 14.06 mg/L), accompanied by pronounced surface erosion and fragmentation under piezo-photocatalysis. The introduction of CNFe triggers Fermi-level realignment to accelerate interfacial charge flux toward ZnO adsorption sites, promoting peroxo bond polarization and cleavage, driving the self-disproportionation of HSO5– to generate 1O2. This study establishes a charge-transfer-regulated framework for steering ROS pathways in piezo-photocatalytic systems, challenging conventional radical-dominated approaches for microplastics upcycling.
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