Surface engineering of metallic nanocrystals via atomic structure and composition control for boosting electrocatalysis

IF 6.1 Q2 CHEMISTRY, PHYSICAL
Young-ae Whang, Yongmin Kwon, H. Ahn, J. Hong, S. Han
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Abstract

Since the clean energy industry emerged, developing efficient nanocrystal catalysts has attracted ever-increasing attention. Recently, the utilization of metal nanocrystals as catalysts for electrochemical reactions is entering a new era with the development of theories and techniques that help incorporate surface chemistry into nanoscale materials. Current approaches in the field of nanocrystal catalysts include detailed analyses and modifications of the surface atoms of nanocrystals, with which optimal structures and compositions for target electrochemical reactions could be realized. This review presents two major strategies to engineer the surface structure of nanocrystals: control over the atomic arrangement and composition of nanocrystal surfaces. The first section mainly covers the modification of surface atom arrangements with various methods, including the induction of various facets, strains, and defects. The generation of anomalous crystal structures of nanocrystals is also discussed. The second section encompasses recent advances in controlling the composition of nanocrystal surfaces by bringing high entropy or periodicity to the metal elements in nanocrystals to attain high electrocatalytic activity and stability.
通过原子结构和组成控制促进电催化的金属纳米晶体表面工程
自清洁能源产业出现以来,开发高效的纳米晶体催化剂越来越受到关注。最近,随着有助于将表面化学纳入纳米材料的理论和技术的发展,利用金属纳米晶体作为电化学反应的催化剂正进入一个新时代。纳米晶体催化剂领域的当前方法包括对纳米晶体表面原子的详细分析和修饰,利用这些方法可以实现目标电化学反应的最佳结构和组成。这篇综述提出了两种设计纳米晶体表面结构的主要策略:控制纳米晶体表面的原子排列和组成。第一节主要介绍用各种方法修饰表面原子排列,包括诱导各种晶面、应变和缺陷。还讨论了纳米晶体反常晶体结构的产生。第二部分介绍了通过给纳米晶体中的金属元素带来高熵或周期性以获得高电催化活性和稳定性来控制纳米晶体表面组成的最新进展。
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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