离域电子
甲烷
甲烷厌氧氧化
催化作用
氧化物
尖晶石
X射线光电子能谱
材料科学
电子结构
氧化态
甲烷氧化偶联
光化学
电子转移
化学工程
无机化学
部分氧化
化学
氧气
联轴节(管道)
化学物理
电子效应
多相催化
密度泛函理论
氧化还原
拉曼光谱
催化氧化
纳米技术
作者
Jing Xiao,Meiqing Shen,Gurong Shen,Xinhua Li,Liwei Jia,Yilin Wang,Wei Li,Feng Gao
标识
DOI:10.1021/acscatal.6c04749
摘要
Abstract Developing Pd-based catalysts for methane oxidation that combine low-temperature activity with strong water tolerance remains a major challenge for emission control applications. Herein, we introduce a high-entropy architecture into Co3O4-based spinel supports to regulate Pd-support interfacial interactions. The resulting high-entropy support (HE-Co-Sp) forms a hybridized and electronically delocalized Co–O–M (M = multiple cations) network, providing dynamic electron-buffering capability. This electronic framework promotes rapid replenishment of reactive oxygen species at Pd sites, thereby enhancing low-temperature methane oxidation activity. Concurrently, interfacial electronic coupling induces electron transfer from the support to Pd, as evidenced by XANES, EXAFS, and Pd 3d XPS measurements, leading to a moderated Pd electronic state and suppressed H2O adsorption. As a result, Pd/HE-Co-Sp exhibits markedly improved stability under wet methane oxidation under highly O2-rich conditions compared with Pd/θ-Al2O3, Pd/Co3O4, and Pd/MnCo2O4. These findings establish high-entropy-induced electronic delocalization as an effective strategy for designing water-tolerant methane oxidation catalysts.
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