Bimetallic Platinum-Rhodium Alloy Nanodendrites as Highly Active Electrocatalyst for the Ethanol Oxidation Reaction.
Juan BaiXue XiaoYuan-Yuan XueJia Xing JiangJing-Hui ZengXi-Fei LiYu ChenPublished in: ACS applied materials & interfaces (2018)
Rationally designing and manipulating composition and morphology of precious metal-based bimetallic nanostructures can markedly enhance their electrocatalytic performance, including selectivity, activity, and durability. We herein report the synthesis of bimetallic PtRh alloy nanodendrites (ANDs) with tunable composition by a facile complex-reduction synthetic method under hydrothermal conditions. The structural/morphologic features, formation mechanism, and electrocatalytic performance of PtRh ANDs are investigated thoroughly by various physical characterization and electrochemical methods. The preformed Rh crystal nuclei effectively catalyze the reduction of Pt2+ precursor, resulting in PtRh alloy generation due to the catalytic growth and atoms interdiffusion process. The Pt atoms deposition distinctly interferes in Rh atoms deposition on Rh crystal nuclei, resulting in dendritic morphology of PtRh ANDs. For the ethanol oxidation reaction (EOR), PtRh ANDs display the chemical composition and solution pH co-dependent electrocatalytic activity. Because of the alloy effect and particular morphologic feature, Pt1Rh1 ANDs with optimized composition exhibit better reactivity and stability for the EOR than commercial Pt nanocrystals electrocatalyst.
Keyphrases
- metal organic framework
- reduced graphene oxide
- electron transfer
- hydrogen peroxide
- gold nanoparticles
- physical activity
- machine learning
- ionic liquid
- solid state
- nitric oxide
- visible light
- energy transfer
- heavy metals
- molecularly imprinted
- room temperature
- risk assessment
- highly efficient
- quantum dots
- anaerobic digestion
- liquid chromatography