Li Menggang, Lin Fangxu, Zhang Shipeng, Zhao Rui, Tao Lu, Li Lu, Li Junyi, Zeng Lingyou, Luo Mingchuan, Guo Shaojun
School of Materials Science and Engineering, Peking University, Beijing 100871, China.
Beijing Innovation Centre for Engineering Science and Advanced Technology, Peking University, Beijing 100871, China.
Sci Adv. 2024 Jun 7;10(23):eadn2877. doi: 10.1126/sciadv.adn2877. Epub 2024 Jun 5.
Alloying has proven power to upgrade metallic electrocatalysts, while the traditional alloys encounter limitation for optimizing electronic structures of surface metallic sites in a continuous manner. High-entropy alloys (HEAs) overcome this limitation by manageably tuning the adsorption/desorption energies of reaction intermediates. Recently, the marriage of nanotechnology and HEAs has made considerable progresses for renewable energy technologies, showing two important trends of size diminishment and multidimensionality. This review is dedicated to summarizing recent advances of HEAs that are rationally designed for energy electrocatalysis. We first explain the advantages of HEAs as electrocatalysts from three aspects: high entropy, nanometer, and multidimension. Then, several structural regulation methods are proposed to promote the electrocatalysis of HEAs, involving the thermodynamically nonequilibrium synthesis, regulating the (sub-)nanosize and anisotropic morphologies, as well as engineering the atomic ordering. The general relationship between the electronic structures and electrocatalytic properties of HEAs is further discussed. Finally, we outline remaining challenges of this field, aiming to inspire more sophisticated HEA-based nanocatalysts.
合金化已被证明具有提升金属电催化剂性能的能力,然而传统合金在以连续方式优化表面金属位点的电子结构方面存在局限性。高熵合金(HEAs)通过可控地调节反应中间体的吸附/解吸能量克服了这一局限性。最近,纳米技术与高熵合金的结合在可再生能源技术方面取得了显著进展,呈现出尺寸减小和多维化这两个重要趋势。本综述致力于总结为能量电催化而合理设计的高熵合金的最新进展。我们首先从高熵、纳米和多维三个方面解释高熵合金作为电催化剂的优势。然后,提出了几种促进高熵合金电催化的结构调控方法,包括热力学非平衡合成、调节(亚)纳米尺寸和各向异性形态,以及构建原子有序结构。进一步讨论了高熵合金的电子结构与电催化性能之间的一般关系。最后,我们概述了该领域仍然存在的挑战,旨在激发更多基于高熵合金的先进纳米催化剂。