Jiangsu Key Laboratory of New Power Batteries, Jiangsu Collaborative Innovation Centre of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing, 210023, China.
Materials Science and Engineering Program & Texas Materials Institute, The University of Texas at Austin, Austin, TX, 79407, USA.
Small. 2021 Apr;17(17):e2007179. doi: 10.1002/smll.202007179. Epub 2021 Mar 11.
Morphology-control synthesis is an effective means to tailor surface structure of noble-metal nanocrystals, which offers a sensitive knob for tuning their electrocatalytic properties. The functional molecules are often indispensable in the morphology-control synthesis through preferential adsorption on specific crystal facets, or controlling certain crystal growth directions. In this review, the recent progress in morphology-control synthesis of noble-metal nanocrystals assisted by amino-based functional molecules for electrocatalytic applications are focused on. Although a mass of noble-metal nanocrystals with different morphologies have been reported, few review studies have been published related to amino-based molecules assisted control strategy. A full understanding for the key roles of amino-based molecules in the morphology-control synthesis is still necessary. As a result, the explicit roles and mechanisms of various types of amino-based molecules, including amino-based small molecules and amino-based polymers, in morphology-control of noble-metal nanocrystals are summarized and discussed in detail. Also presented in this progress are unique electrocatalytic properties of various shaped noble-metal nanocrystals. Particularly, the optimization of electrocatalytic selectivity induced by specific amino-based functional molecules (e.g., polyallylamine and polyethyleneimine) is highlighted. At the end, some critical prospects, and challenges in terms of amino-based molecules-controlled synthesis and electrocatalytic applications are proposed.
形态控制合成是一种有效的方法,可以调整贵金属纳米晶体的表面结构,为调整其电催化性能提供了一个敏感的控制旋钮。通过优先吸附在特定的晶面或控制特定的晶体生长方向,功能分子在形态控制合成中往往是不可或缺的。本综述重点介绍了氨基酸基功能分子辅助贵金属纳米晶体电催化应用的形态控制合成的最新进展。尽管已经报道了大量具有不同形态的贵金属纳米晶体,但很少有关于氨基酸基分子辅助控制策略的综述研究。因此,仍然有必要充分了解氨基酸基分子在形态控制合成中的关键作用。结果,详细总结和讨论了各种类型的氨基酸基分子(包括氨基酸基小分子和氨基酸基聚合物)在贵金属纳米晶体形态控制中的明确作用和机制。还介绍了各种形状的贵金属纳米晶体独特的电催化性能。特别强调了特定氨基酸基功能分子(如聚烯丙胺和聚乙烯亚胺)引起的电催化选择性优化。最后,提出了基于氨基酸分子的合成和电催化应用的一些关键前景和挑战。