Kim Yo Han, Jeong Hyeongwon, Won Bo-Ram, Jeon Hyejin, Park Chan-Ho, Park Dayoung, Kim Yeeun, Lee Somi, Myung Jae-Ha
Department of Materials Science and Engineering, Incheon National University, Incheon, 22012, Republic of Korea.
Nanomicro Lett. 2023 Nov 28;16(1):33. doi: 10.1007/s40820-023-01258-4.
Supported nanoparticles have attracted considerable attention as a promising catalyst for achieving unique properties in numerous applications, including fuel cells, chemical conversion, and batteries. Nanocatalysts demonstrate high activity by expanding the number of active sites, but they also intensify deactivation issues, such as agglomeration and poisoning, simultaneously. Exsolution for bottom-up synthesis of supported nanoparticles has emerged as a breakthrough technique to overcome limitations associated with conventional nanomaterials. Nanoparticles are uniformly exsolved from perovskite oxide supports and socketed into the oxide support by a one-step reduction process. Their uniformity and stability, resulting from the socketed structure, play a crucial role in the development of novel nanocatalysts. Recently, tremendous research efforts have been dedicated to further controlling exsolution particles. To effectively address exsolution at a more precise level, understanding the underlying mechanism is essential. This review presents a comprehensive overview of the exsolution mechanism, with a focus on its driving force, processes, properties, and synergetic strategies, as well as new pathways for optimizing nanocatalysts in diverse applications.
负载型纳米颗粒作为一种有前途的催化剂,在众多应用中展现出独特性能,包括燃料电池、化学转化和电池等领域,已引起了广泛关注。纳米催化剂通过增加活性位点数量表现出高活性,但同时也加剧了诸如团聚和中毒等失活问题。用于负载型纳米颗粒自下而上合成的析出现象已成为一种突破性技术,以克服与传统纳米材料相关的局限性。纳米颗粒通过一步还原过程从钙钛矿氧化物载体中均匀析出并嵌入氧化物载体中。由嵌入结构产生的均匀性和稳定性在新型纳米催化剂的开发中起着至关重要的作用。最近,大量研究致力于进一步控制析出颗粒。为了在更精确的水平上有效解决析出问题,了解其潜在机制至关重要。本综述全面概述了析出现象的机制,重点关注其驱动力、过程、性质和协同策略,以及在不同应用中优化纳米催化剂的新途径。