Literature DB >> 33470522

Engineering the Near-Surface of PtRu3 Nanoparticles to Improve Hydrogen Oxidation Activity in Alkaline Electrolyte.

Junming Zhang1,2, Ximing Qu1, Linfan Shen1, Guang Li1, Tianen Zhang1, Jinhong Zheng1, Lifei Ji1, Wei Yan1, Yu Han1, Xiaoyang Cheng1, Yanxia Jiang1, Shigang Sun1.   

Abstract

Tailoring the near-surface composition of Pt-based alloy can optimize the surface chemical properties of a nanocatalyst and further improve the sluggish H2 electrooxidation performance in an alkaline electrolyte. However, the construction of alloy nanomaterials with a precise near-surface composition and smaller particle size still needs to overcome huge obstacles. Herein, ultra-small PtRu3 binary nanoparticles (<2 nm) evenly distributed on porous carbon (PtRu3 /PC), with different near-surface atomic compositions (Pt-increased and Ru-increased), are successfully synthesized. XPS characterizations and electrochemical test confirm the transformation of a near-surface atomic composition after annealing PtRu3 /PC-300 alloy; when annealing in CO atmosphere, forming the Pt-increased near-surface structure (500 °C), while the Ru-increased near-surface structure appears in an Ar heat treatment process (700 °C). Furthermore, three PtRu3 /PC nanocatalysts all weaken the hydrogen binding strength relative to the Pt/PC. Remarkably, the Ru-increased nanocatalyst exhibits up to 38.8-fold and 9.2-fold HOR improvement in mass activity and exchange current density, compared with the Pt/PC counterpart, respectively. CO-stripping voltammetry tests demonstrate the anti-CO poisoning ability of nanocatalysts, in the sequence of Ru-increased ≥ PtRu3 /PC-300 > Pt-increased > Pt/PC. From the perspective of engineering a near-surface structure, this study may open up a new route for the development of high-efficiency electrocatalysts with a strong electronic effect and oxophilic effect.
© 2021 Wiley-VCH GmbH.

Entities:  

Keywords:  PtRuzzm3219903 nanocatalysts; annealing; hydrogen oxidation reaction; near-surface atomic composition; porous carbon

Year:  2021        PMID: 33470522     DOI: 10.1002/smll.202006698

Source DB:  PubMed          Journal:  Small        ISSN: 1613-6810            Impact factor:   13.281


  3 in total

1.  Nano-Sized PtRu/C Electrocatalyst With Separated Phases and High Dispersion Improves Electrochemical Performance of Hydrogen Oxidation Reaction.

Authors:  Yiling Feng; Wei Han; Tingyu Wang; Qian Chen; Yan Zhang; Yonggang Sun; Xin Zhang; Lin Yang; Song Chen; YuXiang Xu; Hong Tang; Bing Zhang; Hao Wang
Journal:  Front Chem       Date:  2022-05-31       Impact factor: 5.545

2.  Atomically dispersed chromium coordinated with hydroxyl clusters enabling efficient hydrogen oxidation on ruthenium.

Authors:  Bingxing Zhang; Baohua Zhang; Guoqiang Zhao; Jianmei Wang; Danqing Liu; Yaping Chen; Lixue Xia; Mingxia Gao; Yongfeng Liu; Wenping Sun; Hongge Pan
Journal:  Nat Commun       Date:  2022-10-06       Impact factor: 17.694

3.  Atomic-precision Pt6 nanoclusters for enhanced hydrogen electro-oxidation.

Authors:  Xiaoning Wang; Lianming Zhao; Xuejin Li; Yong Liu; Yesheng Wang; Qiaofeng Yao; Jianping Xie; Qingzhong Xue; Zifeng Yan; Xun Yuan; Wei Xing
Journal:  Nat Commun       Date:  2022-03-24       Impact factor: 14.919

  3 in total

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