Literature DB >> 30117323

Cyclic Penta-Twinned Rhodium Nanobranches as Superior Catalysts for Ethanol Electro-oxidation.

Jiawei Zhang1, Jinyu Ye1, Qiyuan Fan1, Yating Jiang1, Yifan Zhu1, Huiqi Li1, Zhenming Cao1, Qin Kuang1, Jun Cheng1, Jun Zheng2, Zhaoxiong Xie1,3.   

Abstract

Developing active and durable electro-catalysts toward ethanol oxidation reaction (EOR) with high selectivity toward the C-C bond cleavage is an important issue for the commercialization of direct ethanol fuel cell. Unfortunately, current ethanol oxidation electro-catalysts (e.g., Pt, Pd) still suffer from poor selectivity for direct oxidation of ethanol to CO2, and rapid activity degradation. Here we report a facile route to the synthesis of a new kind of cyclic penta-twinned (CPT) Rh nanostructures that are self-supported nanobranches (NBs) built with 1-dimension CPT nanorods as subunits. Structurally, the as-prepared Rh NBs possess high percentage of open {100} facets with significant CPT-induced lattice strains. With these unique structural characteristics, the as-prepared CPT Rh NBs exhibit outstanding electrocatalytic performance toward EOR in alkaline solution. Most strikingly, the selectivity of complete conversion ethanol to CO2 on the CPT Rh NBs is measured to be as high as 14.5 ± 1.1% at -0.15 V, far exceeding that for single-crystal tetrahedral nanocrystals, icosahedral nanocrystals, and commercial Rh black, as well as majority of reported values for Pt or Pd-based electro-catalysts. By combining with density functional theory calculation, the effects of different structural features of Rh on EOR are definitively elucidated. It was found that the large amount of open Rh (100) facets dominantly contribute to the outstanding activity and exceptionally high selectivity, while the additional tensile strain on (100) planes can further boost the catalytic activity by enhancing the adsorption strength and lowering the reaction barrier of dehydrogenation process of ethanol. As a proof of concept, the present work shows that rationally optimizing surface and electronic structure of electro-catalysts by simultaneously engineering their surface and bulk structures is a promising strategy to promote the performance of electro-catalysts.

Entities:  

Year:  2018        PMID: 30117323     DOI: 10.1021/jacs.8b03080

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  2 in total

1.  Construction of Pd-Zn dual sites to enhance the performance for ethanol electro-oxidation reaction.

Authors:  Yajun Qiu; Jian Zhang; Jing Jin; Jiaqiang Sun; Haolin Tang; Qingqing Chen; Zedong Zhang; Wenming Sun; Ge Meng; Qi Xu; Youqi Zhu; Aijuan Han; Lin Gu; Dingsheng Wang; Yadong Li
Journal:  Nat Commun       Date:  2021-09-06       Impact factor: 14.919

2.  Mesoporous PdBi nanocages for enhanced electrocatalytic performances by all-direction accessibility and steric site activation.

Authors:  Dawei Du; Qinghong Geng; Lian Ma; Siyu Ren; Jun-Xuan Li; Weikang Dong; Qingfeng Hua; Longlong Fan; Ruiwen Shao; Xiaoming Wang; Cuiling Li; Yusuke Yamauchi
Journal:  Chem Sci       Date:  2022-02-28       Impact factor: 9.825

  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.