College of Chemistry and Chemical Engineering, Chongqing University, Chongqing, 400044, China.
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
Angew Chem Int Ed Engl. 2017 Apr 10;56(16):4488-4493. doi: 10.1002/anie.201701149. Epub 2017 Mar 23.
Three-dimensional (3D) interconnected metal alloy nanostructures possess superior catalytic performance owing to their advantageous characteristics, including improved catalytic activity, corrosion resistance, and stability. Hierarchically structured Ni-Cu alloys composed of 3D network-like microscopic branches with nanoscopic dendritic feelers on each branch were crafted by a facile and efficient hydrogen evolution-assisted electrodeposition approach. They were subsequently exploited for methanol electrooxidation in alkaline media. Among three hierarchically structured Ni-Cu alloys with different Ni/Cu ratios (Ni Cu , Ni Cu , and Ni Cu ), the Ni Cu electrode exhibited the fastest electrochemical response and highest electrocatalytic activity toward methanol oxidation. The markedly enhanced performance of Ni Cu eletrocatalyst can be attributed to its alloyed structure with the proper Ni/Cu ratio and a large number of active sites on the surface of hierarchical structures.
三维(3D)互联金属合金纳米结构具有优越的催化性能,因为它们具有一些有利的特性,包括提高的催化活性、耐腐蚀性和稳定性。通过一种简便有效的析氢辅助电沉积方法,制备了由 3D 网络状微观分支和每个分支上纳米状树突状感觉器组成的分层结构 Ni-Cu 合金。随后,它们被用于碱性介质中的甲醇电氧化。在具有不同 Ni/Cu 比(NiCu、NiCu 和 NiCu)的三种分层结构 Ni-Cu 合金中,NiCu 电极对甲醇氧化表现出最快的电化学响应和最高的电催化活性。NiCu 电催化剂性能的显著提高归因于其具有适当 Ni/Cu 比的合金结构和分层结构表面上的大量活性位点。