| Literature DB >> 29874468 |
Xiao Xia Wang1,2, Sooyeon Hwang3, Yung-Tin Pan4, Kate Chen2, Yanghua He2, Stavros Karakalos5, Hanguang Zhang2, Jacob S Spendelow4, Dong Su3, Gang Wu2.
Abstract
Highly ordered Pt alloy structures are proven effective to improve their catalytic activity and stability for the oxygen reduction reaction (ORR) for proton exchange membrane fuel cells. Here, we report a new approach to preparing ordered Pt3Co intermetallic nanoparticles through a facile thermal treatment of Pt nanoparticles supported on Co-doped metal-organic-framework (MOF)-derived carbon. In particular, the atomically dispersed Co sites, which are originally embedded into MOF-derived carbon, diffuse into Pt nanocrystals and form ordered Pt3Co structures. It is very crucial for the formation of the ordered Pt3Co to carefully control the doping content of Co into the MOFs and the heating temperatures for Co diffusion. The optimal Pt3Co nanoparticle catalyst has achieved significantly enhanced activity and stability, exhibiting a half-wave potential up to 0.92 V vs reversible hydrogen electrode (RHE) and only losing 12 mV after 30 000 potential cycling between 0.6 and 1.0 V. The highly ordered intermetallic structure was retained after the accelerated stress tests made evident by atomic-scale elemental mapping. Fuel cell tests further verified the high intrinsic activity of the ordered Pt3Co catalysts. Unlike the direct use of MOF-derived carbon supports for depositing Pt, we utilized MOF-derived carbon containing atomically dispersed Co sites as Co sources to prepare ordered Pt3Co intermetallic catalysts. The new synthesis approach provides an effective strategy to develop active and stable Pt alloy catalysts by leveraging the unique properties of MOFs such as 3D structures, high surface areas, and controlled nitrogen and transition metal dopings.Entities:
Keywords: Pt3Co intermetallic; atomically dispersed Co; electrocatalysis; metal−organic frameworks; oxygen reduction reaction
Year: 2018 PMID: 29874468 DOI: 10.1021/acs.nanolett.8b00978
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189