A High Entropy Oxide Designed to Catalyze CO Oxidation Without Precious Metals

氧化物 催化作用 材料科学 热稳定性 过渡金属 铂金 金属 烧结 化学工程 氧气储存 无机化学 化学 冶金 有机化学 工程类
作者
Christopher Riley,Andrew De La Riva,James Eujin Park,Stephen Percival,Angelica Benavidez,Eric N. Coker,Ruby Aidun,Elizabeth A. Paisley,Abhaya K. Datye,Stanley S. Chou
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:13 (7): 8120-8128 被引量:43
标识
DOI:10.1021/acsami.0c17446
摘要

The chemical complexity of single-phase multicationic oxides, commonly termed high entropy oxides (HEOs), enables the integration of conventionally incompatible metal cations into a single-crystalline phase. However, few studies have effectively leveraged the multicationic nature of HEOs for optimization of disparate physical and chemical properties. Here, we apply the HEO concept to design robust oxidation catalysts in which multicationic oxide composition is tailored to simultaneously achieve catalytic activity, oxygen storage capacity, and thermal stability. Unlike conventional catalysts, HEOs maintain single-phase structure, even at high temperature, and do not rely on the addition of expensive platinum group metals (PGM) to be active. The HEOs are synthesized through a facile, relatively low temperature (500 °C) sol–gel method, which avoids excessive sintering and catalyst deactivation. Nanostructured high entropy oxides with surface areas as high as 138 m2/g are produced, marking a significant structural improvement over previously reported HEOs. Each HEO contained Ce in varying concentrations, as well as four other metals among Al, Fe, La, Mn, Nd, Pr, Sm, Y, and Zr. All samples adopted a fluorite structure. First row transition metal cations were most effective at improving CO oxidation activity, but their incorporation reduced thermal stability. Rare earth cations were necessary to prevent thermal deactivation while maintaining activity. In sum, our work demonstrates the utility of entropy in complex oxide design and a low-energy synthetic route to produce nanostructured HEOs with cations selected for a cooperative effect toward robust performance in chemically and physically demanding applications.
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