化学
催化作用
铜
检出限
涂层
钝化
蚀刻(微加工)
氧化铜
表面改性
氧化物
氧气
表面工程
组合化学
无机化学
配位复合体
多相催化
纳米技术
化学工程
化学稳定性
动力学
酸蚀
作者
林佳蓁,Xuefeng Shao,Yuhong Zhong,Yanpeng Ming,Sha Liu,Xiaofei Liu,Jian Liu
标识
DOI:10.1021/acs.inorgchem.6c01372
摘要
Developing convenient enzyme-mimic colorimetric detection methods is essential for the long-term and systematic safety management of Ag + pollution, where nanozyme stability and catalytic activity govern detection performance. In this work, we employed a surface-engineering strategy on copper oxides using trithiocyanuric acid (TTCA) as an electron-injection reagent. Partial etching of Cu 2+ was followed by in situ reductive coordination with the C═S groups of TTCA, generating a surface coating of poly-TTCA/Cu + and TTCA/Cu + species. This surface engineering approach significantly enhanced both the peroxidase-mimic (POD-mimic) activity and catalytic stability of the copper oxides. The introduced unsaturated Cu + ···S═C coordination moieties were identified as critical for efficient H 2 O 2 activation to produce reactive oxygen species (·OH, ·O 2 –, and 1 O 2 ). A highly sensitive and selective colorimetric platform was then established for Ag + detection, achieving a detection limit of 0.02 μM and successfully applied to actual water samples. The detection mechanism involves Ag + -mediated structural disruption and reconstruction, leading to the passivation of the POD-mimic activity. Our surface-engineering strategy for improving the POD-mimic performance deepens the understanding of the structure–activity-detection relationship in nanozymes, presenting a valuable pathway for advancing enzyme-mimic optimization for diverse applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI