Wang Wei, Zhang Xue, Zhang Yuhui, Chen Xiaowei, Ye Jinyu, Chen Jiayu, Lyu Zixi, Chen Xuejiao, Kuang Qin, Xie Shuifen, Xie Zhaoxiong
College of Materials Science and Engineering, Huaqiao University, Xiamen 361021, China.
Institute of Advanced Materials Science and Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.
Nano Lett. 2020 Jul 8;20(7):5458-5464. doi: 10.1021/acs.nanolett.0c01908. Epub 2020 Jun 10.
Atomic edge sites on two-dimensional (2D) nanomaterials display striking catalytic behavior, whereas edge engineering for 2D metal nanocatalysts remains an insurmountable challenge. Here we advance a one-pot synthesis of ultrathin 2D PdPtCu trimetallic nanosheets and nanorings with escalating low-coordinated edge proportions from 11.74% and 23.11% to 45.85% as cutting-edge ethanol oxidation reaction (EOR) electrocatalysts. This in situ edge enrichment hinges on a competitive surface capping and etching strategy with integrated manipulation of the reaction kinetics. Electrocatalysis tests demystify an edge-relied EOR performance, where the edge-richest 9.0 nm-PdPtCu nanorings attain an exceptional activity (12.42 A mg, 20.2 times that of commercial Pt/C) with substantially improved durability. Molecularly mechanistic studies certify that the unsaturated edge sites on these 2D catalysts prevail, triggering the C-C bond scission and succeeding CO removal to facilitate a 12-electron-transferring EOR process. This study introduces the "metal-edge-driven" concept and enables the "edge sites on 2D multimetallic nanocatalysts" technique to design versatile heterocatalysts.
二维(2D)纳米材料上的原子边缘位点表现出显著的催化行为,而二维金属纳米催化剂的边缘工程仍然是一个难以克服的挑战。在此,我们提出了一种一锅法合成超薄二维PdPtCu三金属纳米片和纳米环的方法,作为前沿的乙醇氧化反应(EOR)电催化剂,其低配位边缘比例从11.74%和23.11%逐步提高到45.85%。这种原位边缘富集依赖于一种竞争性的表面封端和蚀刻策略以及对反应动力学的综合调控。电催化测试揭示了一种依赖边缘的EOR性能,其中边缘最丰富的9.0 nm-PdPtCu纳米环具有卓越的活性(12.42 A mg,是商业Pt/C的20.2倍),且耐久性大幅提高。分子机理研究证明,这些二维催化剂上的不饱和边缘位点起主导作用,引发C-C键断裂并随后去除CO,以促进12电子转移的EOR过程。本研究引入了“金属边缘驱动”概念,并使“二维多金属纳米催化剂上的边缘位点”技术能够设计通用的异质催化剂。