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负载于缺陷空心碳球上的铂纳米催化剂:氧还原反应耐久性研究

Platinum Nanocatalysts Supported on Defective Hollow Carbon Spheres: Oxygen Reduction Reaction Durability Studies.

作者信息

Mashindi Victor, Mente Pumza, Phaahlamohlaka Tumelo N, Mpofu Nobuhle, Makgae Ofentse A, Moreno Beatriz D, Barrett Dean H, Forbes Roy P, Levecque Pieter B, Ozoemena Kenneth I, Coville Neil J

机构信息

Molecular Sciences Institute, School of Chemistry, University of the Witwatersrand, Johannesburg, South Africa.

HySA Catalysis Centre of Competence, Department of Chemical Engineering, Catalysis Institute, University of Cape Town, Cape Town, South Africa.

出版信息

Front Chem. 2022 Feb 21;10:839867. doi: 10.3389/fchem.2022.839867. eCollection 2022.

Abstract

The durability and long-term applicability of catalysts are critical parameters for the commercialization and adoption of fuel cells. Even though a few studies have been conducted on hollow carbon spheres (HCSs) as supports for Pt in oxygen reduction reactions (ORR) catalysis, in-depth durability studies have not been conducted thus far. In this study, Pt/HCSs and Pt/nitrogen-doped HCSs (Pt/NHCSs) were prepared using a reflux deposition technique. Small Pt particles were formed with deposition on the outside of the shell and inside the pores of the shell. The new catalysts demonstrated high activity (>380 μA cm and 240 mA g) surpassing the commercial Pt/C by more than 10%. The catalysts demonstrated excellent durability compared to a commercial Pt/C in load cycling, experiencing less than 50% changes in the mass-specific activity (MA) and surface area-specific activity (SA). In stop-start durability cycling, the new materials demonstrated high stability with more than 50% retention of electrochemical active surface areas (ECSAs). The results can be rationalised by the high BET surface areas coupled with an array of meso and micropores that led to Pt confinement. Further, pair distribution function (PDF) analysis of the catalysts confirmed that the nitrogen and oxygen functional groups, as well as the shell curvature/roughness provided defects and nucleation sites for the deposition of the small Pt nanoparticles. The balance between graphitic and diamond-like carbon was critical for the electronic conductivity and to provide strong Pt-support anchoring.

摘要

催化剂的耐久性和长期适用性是燃料电池商业化和应用的关键参数。尽管已经有一些关于空心碳球(HCSs)作为氧还原反应(ORR)催化中铂载体的研究,但迄今为止尚未进行深入的耐久性研究。在本研究中,采用回流沉积技术制备了Pt/HCSs和Pt/氮掺杂HCSs(Pt/NHCSs)。在壳的外部和壳的孔内沉积形成了小的铂颗粒。新型催化剂表现出高活性(>380 μA cm和240 mA g),比商业Pt/C高出10%以上。与商业Pt/C相比,这些催化剂在负载循环中表现出优异的耐久性,质量比活性(MA)和比表面积活性(SA)的变化小于50%。在启停耐久性循环中,新材料表现出高稳定性,电化学活性表面积(ECSA)保留率超过50%。高BET表面积以及一系列介孔和微孔导致铂受限,这可以合理解释这些结果。此外,对催化剂的配对分布函数(PDF)分析证实,氮和氧官能团以及壳的曲率/粗糙度为小铂纳米颗粒的沉积提供了缺陷和成核位点。石墨状碳和类金刚石碳之间的平衡对于电子导电性以及提供强大的铂-载体锚固至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/219b/8899172/d4e10b6904b4/fchem-10-839867-g001.jpg

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