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.
School of Chemical and Biomedical Engineering , Nanyang Technological University , Singapore 637459 , Singapore.
ACS Appl Mater Interfaces. 2019 Sep 25;11(38):34869-34877. doi: 10.1021/acsami.9b09153. Epub 2019 Sep 10.
Tailoring composition and structure are significantly important to improve the utilization and optimize the performance of the precious Pt catalyst toward various reactions, which greatly relies on the feasible synthesis approach. Herein, we demonstrate that Cu-rich CuPt alloys with unique excavated dodecahedral frame-like structure (CuPt nanoframes) can be synthesized via simply adjusting the amounts of salt precursors and surfactants under hydrothermal conditions. It is established that the presence of hexamethylenetetramine and cetyltrimethylammonium bromide, as well as the selection of a proper Pt/Cu ratio are key for the acquisition of the target product. The immediate appeal of this material stems from frame-like architecture and ultralow Pt content involved, which can be used to greatly improve the utilization efficiency of Pt atoms. When benchmarked against commercial catalysts, the developed CuPt nanostructures display superior electrocatalytic performance toward formic acid oxidation, owing to unique electronic effect and ensemble effect. This work elucidates a promising methodology for the synthesis of Pt-based nanostructures while highlights the significance of composition and structure in electrocatalysis.
调整组成和结构对于提高贵金属 Pt 催化剂在各种反应中的利用率和优化其性能非常重要,这在很大程度上依赖于可行的合成方法。本文中,我们展示了一种通过简单调节水热条件下盐前体和表面活性剂的用量,来合成富 Cu 的 CuPt 合金的方法,该合金具有独特的挖掘十二面体框架状结构(CuPt 纳米框架)。研究表明,六亚甲基四胺和十六烷基三甲基溴化铵的存在以及选择合适的 Pt/Cu 比是获得目标产物的关键。这种材料的直接吸引力源于其框架状结构和超低的 Pt 含量,这可以极大地提高 Pt 原子的利用率。与商业催化剂相比,所开发的 CuPt 纳米结构在甲酸氧化方面表现出优异的电催化性能,这归因于其独特的电子效应和整体效应。这项工作阐明了一种合成 Pt 基纳米结构的有前途的方法,同时强调了组成和结构在电催化中的重要性。