Expanding the frontiers of oxidation catalysis with high-entropy material catalysts

催化作用 合理设计 化学 催化氧化 材料科学 生化工程 氧化还原 可扩展性 计算机科学 纳米技术 设计要素和原则 纳米尺度 多相催化 氧化还原 绿色化学 反应堆设计 组合化学 可持续能源 酒精氧化
作者
K. Chan Shin Yu,Chang Deng,X. Liu,Wenshuai Zhu,Peiwen Wu
出处
期刊:Chemical Communications [Royal Society of Chemistry]
卷期号:62 (8): 2511-2535 被引量:1
标识
DOI:10.1039/d5cc06696d
摘要

Catalytic oxidation is essential in environmental protection, energy conversion, and chemical synthesis. However, conventional catalysts often suffer from limited active-site tunability and structural instability. High-entropy material (HEM) catalysts, composed of multiple principal elements (≥5), offer a promising solution by integrating high configurational entropy, lattice distortion, and multi-element synergy. These features stabilize complex phases under oxidative conditions, enrich active sites, and enable flexible electronic and structural modulation to optimize oxidation pathways. This review systematically summarizes key oxidation applications and reaction mechanisms, critically examines the limitations of traditional catalyst systems, and highlights the distinctive physicochemical features of HEM catalysts. Particular emphasis is placed on recent advances in synthesis strategies, including solvothermal, carbothermal, combustion, and templated approaches, which have enabled precise control over composition, structure, and nanoscale architecture, thereby expanding the design space of HEM catalysts. On this basis, recent progress in applying HEM catalysts to pollutant degradation, energy-related oxidation reactions, and selective organic transformations is comprehensively evaluated. Finally, current challenges and future opportunities are discussed, with an emphasis on feasible routes toward the rational design of efficient, stable, and scalable oxidation catalysts. By integrating concepts from materials chemistry and catalysis, this review provides a unified framework linking high-entropy materials with oxidation catalysis and offers forward-looking guidance for the development of next-generation catalysts for green chemistry and sustainable energy technologies.
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