催化作用
氧化还原
拉曼光谱
氧化物
Crystal(编程语言)
相(物质)
氧化态
化学
晶体结构
无机化学
材料科学
化学工程
结晶学
有机化学
光学
物理
工程类
程序设计语言
计算机科学
作者
Kun Zhao,Huazhong Tang,Botao Qiao,Lin Li,Junhu Wang
摘要
Au/γ-Fe2O3 and Au/α-Fe2O3 catalysts with identical size of Au nanoparticles, chemical state of Au species, and amount of surface OH– group were prepared. The Au/γ-Fe2O3 catalyst exhibited exceptionally high activity, regardless of the heat treatments. The CO-TPR, sequential pulse reaction, and in situ Raman spectra demonstrate that the much higher activity of Au/γ-Fe2O3 originated from its higher redox property at low temperature. Systematic study shows that this higher-redox-property-based higher activity could be extended to γ-Fe2O3-supported Pt-group metals and to other reactions that follow Mars–Van Krevelen mechanism. This finding may provide a new avenue for catalyst improvement or development by choosing the suitable crystal phase of the oxide support.
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