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基于氨基的功能分子用于贵金属纳米晶体的可控合成:一篇综述

The use of amino-based functional molecules for the controllable synthesis of noble-metal nanocrystals: a minireview.

作者信息

Li Zhijuan, Li Meng, Wang Xuan, Fu Gengtao, Tang Yawen

机构信息

Jiangsu Key Laboratory of New Power Batteries, Jiangsu Collaborative Innovation Center of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University Nanjing 210023 China

出版信息

Nanoscale Adv. 2021 Feb 9;3(7):1813-1829. doi: 10.1039/d1na00006c. eCollection 2021 Apr 6.

Abstract

Controlling the morphologies and structures of noble-metal nanocrystals has always been a frontier field in electrocatalysis. Functional molecules such as capping agents, surfactants and additives are indispensable in shape-control synthesis. Amino-based functional molecules have strong coordination abilities with metal ions, and they are widely used in the morphology control of nanocrystals. In this minireview, we pay close attention to recent advances in the use of amino-based functional molecules for the controllable synthesis of noble-metal nanocrystals. The effects of various amino-based molecules on differently shaped noble-metal nanocrystals, including zero-, one-, two-, and three-dimensional nanocrystals, are reviewed and summarized. The roles and mechanisms of amino-based small molecules and long-chain ammonium salts relating to the morphology-control synthesis of noble-metal nanocrystals are highlighted. Relationships between shape and electrocatalytic properties are also described. Finally, some key prospects and challenges relating to the controllable synthesis of noble-metal nanocrystals and their electrocatalytic applications are proposed.

摘要

控制贵金属纳米晶体的形貌和结构一直是电催化领域的前沿课题。封端剂、表面活性剂和添加剂等功能分子在形状控制合成中不可或缺。氨基功能分子与金属离子具有很强的配位能力,被广泛应用于纳米晶体的形貌控制。在本综述中,我们密切关注了氨基功能分子在贵金属纳米晶体可控合成方面的最新进展。综述并总结了各种氨基分子对不同形状贵金属纳米晶体(包括零维、一维、二维和三维纳米晶体)的影响。重点介绍了氨基小分子和长链铵盐在贵金属纳米晶体形貌控制合成中的作用和机制。还描述了形状与电催化性能之间的关系。最后,提出了贵金属纳米晶体可控合成及其电催化应用的一些关键前景和挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/582b/9416890/e59cc02f3336/d1na00006c-s1.jpg

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