对氧磷
化学战剂
氧化铈
化学战
人体净化
降级(电信)
恐怖主义
氧化物
铈
化学
纳米技术
材料科学
废物管理
无机化学
工程类
有机化学
政治学
生化工程
法学
酶
乙酰胆碱酯酶
电信
作者
Isabelle Trenque,Greta Camilla Magnano,Marie‐Alexandrine Bolzinger,Lucian Roiban,Fréderic Chaput,Isabelle Pitault,S. Briançon,Thierry Devers,Karine Masenelli‐Varlot,Matthieu Bugnet,David Amans
摘要
Repeated attacks using organophosphorus compounds, in military conflicts or terrorist acts, necessitate developing inexpensive and readily available decontamination systems. Nanosized cerium oxide is a suitable candidate, acting as a heterogeneous catalyst for the degradation of organophosphorus compounds such as VX agent or sarin. However, the reaction mechanism of the phosphatase mimetic activity of CeO2 nanoparticles is not fully described. Adsorption, surface-promoted hydrolysis, and desorption cycles strongly depend on the physico-chemical characteristics of the facets. In this study, CeO2 nanoparticles with different shapes were elaborated by hydrothermal synthesis. Nano-octahedra, nanocubes, or nanorods were selectively obtained under different conditions (temperature, concentration and nature of the precursors). The degradation activity according to the crystal faces was evaluated in vitro by measuring the degradation kinetics of paraoxon organophosphate in the presence of CeO2 nanoparticles. The results show an influence of both specific surface area and crystal faces of the nanoparticles, with higher activity for {111} facets compared to {100} facets at 32 °C. The relative activity between the facets is ascribed to the adsorption probability, assuming coordination between the phosphoryl oxygen and cerium atoms, but also to the surface density of the Ce doublets with relevant spacing for phosphatase mimetic activity.
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