Nakaya Yuki, Furukawa Shinya
Division of Applied Chemistry, Graduate School of Engineering, Osaka University 2-1 Yamadaoka Suita 565-0871 Japan
Chem Sci. 2024 Jul 25;15(32):12644-12666. doi: 10.1039/d3sc03897a. eCollection 2024 Aug 14.
Alloy materials have been used as promising platforms to upgrade catalytic performance that cannot be achieved with conventional monometallic materials. As a result of numerous efforts, the recent progress in the field of alloy catalysis has been remarkable, and a wide range of new advanced alloys have been considered as potential electro/thermal catalysts. Among advanced alloy materials, high-entropy intermetallics are novel materials, and their excellent catalytic performance has recently been reported. High-entropy intermetallics have several advantages over disordered solid-solution high-entropy alloys, that is, greater structural/thermal stability, more facile site isolation, more precise control of electronic structures, tunability, and multifunctionality. A multidimensional compositional space is indeed limitless, but such a compositional space also provides a well-designed surface configuration because of its ordered nature. In this review, we will provide fundamental insights into high-entropy intermetallics, including thermodynamic properties, synthesis requirements, characterization techniques, roles in catalysis, and reaction examples. The comprehensive information provided in this review will highlight the great application potential of high-entropy intermetallics for catalysis, and will accelerate the development of this newly developed field.
合金材料已被用作提升催化性能的理想平台,而传统单金属材料无法实现这种性能提升。经过大量努力,合金催化领域最近取得了显著进展,多种新型高级合金被视为潜在的电/热催化剂。在先进合金材料中,高熵金属间化合物是新型材料,最近有报道称它们具有优异的催化性能。与无序固溶体高熵合金相比,高熵金属间化合物具有几个优势,即更高的结构/热稳定性、更易于实现位点隔离、对电子结构的控制更精确、具有可调性和多功能性。多维成分空间确实是无限的,但由于其有序性质,这种成分空间也提供了精心设计的表面构型。在这篇综述中,我们将对高熵金属间化合物提供基本见解,包括热力学性质、合成要求、表征技术、在催化中的作用以及反应实例。本综述提供的全面信息将突出高熵金属间化合物在催化方面的巨大应用潜力,并将加速这个新发展领域的发展。