Bhalothia Dinesh, Fan Yu-Jui, Lai Yen-Chun, Yang Ya-Tang, Yang Yaw-Wen, Lee Chih-Hao, Chen Tsan-Yao
Institute of Electronics Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan.
Department of Engineering and System Science, National Tsing Hua University, Hsinchu 30013, Taiwan.
Nanomaterials (Basel). 2019 Jul 11;9(7):1003. doi: 10.3390/nano9071003.
Herein, ternary metallic nanocatalysts (NCs) consisting of Au clusters decorated with a Pt shell and a Ni oxide core underneath (called NPA) on carbon nanotube (CNT) support were synthesized by combining adsorption, precipitation, and chemical reduction methods. By a retrospective investigation of the physical structure and electrochemical results, we elucidated the effects of Pt/Ni ratios (0.4 and 1.0) and Au contents (2 and 9 wt.%) on the nanostructure and corresponding oxygen reduction reaction (ORR) activity of the NPA NCs. We found that the ORR activity of NPA NCs was mainly dominated by the Pt-shell thickness which regulated the depth and size of the surface decorated with Au clusters. In the optimal case, NPA-1004006 (with a Pt/Ni of 0.4 and Au of ~2 wt.%) showed a kinetic current () of 75.02 mA cm which was nearly 17-times better than that (4.37 mA cm) of the commercial Johnson Matthey-Pt/C (20 wt.% Pt) catalyst at 0.85 V vs. the reference hydrogen electrode. Such a high value resulted in substantial improvements in both the specific activity (by ~53-fold) and mass activity (by nearly 10-fold) in the same benchmark target. Those scenarios rationalize that ORR activity can be substantially improved by a syngeneic effect at heterogeneous interfaces among nanometer-sized NiO, Pt, and Au clusters on the NC surface.
在此,通过结合吸附、沉淀和化学还原方法,合成了由碳纳米管(CNT)负载的三元金属纳米催化剂(NCs),其由Pt壳层修饰的Au簇和下面的Ni氧化物核组成(称为NPA)。通过对物理结构和电化学结果的回顾性研究,我们阐明了Pt/Ni比(0.4和1.0)和Au含量(2和9 wt.%)对NPA NCs的纳米结构和相应氧还原反应(ORR)活性的影响。我们发现,NPA NCs的ORR活性主要由Pt壳层厚度决定,该厚度调节了用Au簇修饰的表面的深度和尺寸。在最佳情况下,NPA-1004006(Pt/Ni为0.4,Au约为2 wt.%)在相对于参比氢电极0.85 V时显示出75.02 mA cm的动力学电流(),这比商业Johnson Matthey-Pt/C(20 wt.% Pt)催化剂的电流(4.37 mA cm)高出近17倍。如此高的值导致在相同的基准目标下比活性(提高约53倍)和质量活性(提高近10倍)都有显著提高。这些情况表明,通过NC表面纳米尺寸的NiO、Pt和Au簇之间异质界面的同基因效应,可以大幅提高ORR活性。