Noble-metal-based high-entropy-alloy nanoparticles for electrocatalysis

IF 14 1区 化学 Q1 CHEMISTRY, APPLIED
Xianfeng Huang , Guangxing Yang , Shuang Li , Hongjuan Wang , Yonghai Cao , Feng Peng , Hao Yu
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引用次数: 35

Abstract

Since the two seminal papers were published independently in 2004, high-entropy-alloys (HEAs) have been applied to structural and functional materials due to the enhanced mechanical properties, thermal stability, and electrical conductivity. In recent years, HEA nanoparticles (HEA-NPs) were paid much attention to in the field of catalysis for the promoted catalytic activity. Furthermore, the various ratios among the metal components and tunable bulk and surface structures enable HEAs have big room to enhance the catalytic performance. Especially, noble-metal-based HEAs displayed significantly improved performance in electrocatalysis, where the ‘core effects’ were employed to explain the superior catalytic activity. However, it is insufficient to understand the essential mechanism or further guide the design of electrocatalysts. Structure–property relationship should be disclosed for the catalysis on HEA-NPs to accelerate the process of seeking high effective and efficient electrocatalysts. Therefore, we summarized the recent advances of noble-metal-based HEA-NPs applied to electrocatalysis, such as hydrogen evolution reaction, oxygen evolution reaction, oxygen reduction reaction, methanol oxidation reaction, ethanol oxidation reaction, formic acid oxidation reaction, hydrogen oxidation reaction, carbon dioxide reduction reaction and nitrogen reduction reaction. For each electrocatalytic reaction, the reaction mechanism and catalyst structure were presented, and then the structure–property relationship was elaborated. The review begins with the development, concept, four ‘core effect’ and synthesis methods of HEAs. Next, the electrocatalytic reactions on noble-metal-based HEA-NPs are summarized and discussed independently. Lastly, the main views and difficulties pertaining to structure–property relationship for HEAs are discussed.

Abstract Image

电催化用贵金属高熵合金纳米颗粒
自2004年这两篇开创性的论文独立发表以来,高熵合金(HEAs)因其增强的机械性能、热稳定性和导电性而被应用于结构和功能材料。近年来,HEA纳米颗粒(HEA- nps)因其催化活性的提高而受到催化领域的广泛关注。此外,金属组分的不同比例和可调的体积和表面结构使HEAs有很大的空间来提高催化性能。特别是,贵金属基HEAs在电催化方面表现出显着改善的性能,其中“核心效应”被用来解释优越的催化活性。然而,对其基本机理的认识和进一步指导电催化剂的设计还不够。揭示HEA-NPs催化的结构-性能关系,加快寻求高效、高效电催化剂的进程。因此,本文综述了贵金属基HEA-NPs在析氢反应、析氧反应、氧还原反应、甲醇氧化反应、乙醇氧化反应、甲酸氧化反应、氢氧化反应、二氧化碳还原反应和氮还原反应等电催化领域的研究进展。介绍了各电催化反应的反应机理和催化剂结构,并对其构效关系进行了阐述。本文从高等教育评价的发展、概念、四种“核心效应”和综合方法等方面进行了综述。其次,对贵金属基HEA-NPs的电催化反应进行了总结和独立讨论。最后,讨论了高等学校结构-性质关系的主要观点和难点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
23.60
自引率
0.00%
发文量
2875
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