In situ analysis of optimum surface atom coordination for Pt nanoparticle oxygen reduction electrocatalysts

被引:14
|
作者
St. John, Samuel [1 ]
Angelopoulos, Anastasios P. [1 ]
机构
[1] Univ Cincinnati, Dept Biomed Chem & Environm Engn, Chem Engn Program, Cincinnati, OH 45221 USA
关键词
Surface model; Catalysis; ORR; Surface adsorption; Surface active site distribution; HYDROGEN ADSORPTION STATES; ACTIVITY-STABILITY RELATIONSHIPS; PLATINUM STEPPED SURFACES; SINGLE-CRYSTAL ELECTRODES; X-RAY-SCATTERING; ELECTROCHEMICAL CHARACTERIZATION; UNDERPOTENTIAL DEPOSITION; QUANTITATIVE-ANALYSIS; CARBON-MONOXIDE; TERRACE SITES;
D O I
10.1016/j.electacta.2013.08.138
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Highly dispersed Pt nanoparticles have been extensively studied for the electrocatalytic oxygen reduction reaction (ORR). Pt bulk and supported-nanoparticle electrodes have exhibited varying degrees of surface structure sensitivity toward the ORR for two main reasons: first, preferential adsorption of supporting electrolyte or water; and second, intrinsic variation of reaction kinetics on different Pt(h k l) surfaces or atomic scale imperfections on the Pt surface (e.g. steps, kinks, edges, and corners). The impact of surface atom coordination on ORR activity is seldom reported because there are few techniques that lend themselves to detailed, in situ assessment of catalyst surface site distribution. Surface active sites on ORR electrocatalysts have been inferred from application of bulk crystal structure data to specific nanoparticle geometries that account for electrocatalytically active surface area, ECA (cm(2)/g(Pt)). This approach fails to capture the wide variety of active sites present on electrocatalyst surfaces under operating conditions, particularly at nanoparticle sizes that span the atomic cluster to nanocrystal transition. In this paper, we apply the techniques developed by Feliu et al. to determine surface site distribution in situ and, for the first time in the field, correlate these observations with ORR mass activity, MA (A/g(Pt)), and surface activity, SA (mu A/cm(Pt)(2)) on Pt nanoparticle catalysts. This approach indicates that the predominant active site available for ORR on nanoparticles in the size range of 1.8-6.9 nm is (1 1 0) or (3 11). This observation is confirmed by using perchloric acid, sulfuric acid, and potassium hydroxide to demonstrate that the supporting electrolyte has little influence on ORR kinetics for these nanoparticles. Such behavior suggests that the Pt nanoparticle surfaces investigated consist of stepped adlayers on (1 1 1) or (1 0 0) facets that eliminate the (1 1 1) terraces historically associated with ORR activity. The predominance of such a stepped surface on Pt ORR electrocatalysts is unexpected and demonstrates the need for in situ characterization of active site distribution. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:258 / 268
页数:11
相关论文
共 50 条
  • [1] Highly stable Pt monolayer on PdAu nanoparticle electrocatalysts for the oxygen reduction reaction
    Kotaro Sasaki
    Hideo Naohara
    YongMan Choi
    Yun Cai
    Wei-Fu Chen
    Ping Liu
    Radoslav R. Adzic
    Nature Communications, 3
  • [2] Highly stable Pt monolayer on PdAu nanoparticle electrocatalysts for the oxygen reduction reaction
    Sasaki, Kotaro
    Naohara, Hideo
    Choi, YongMan
    Cai, Yun
    Chen, Wei-Fu
    Liu, Ping
    Adzic, Radoslav R.
    NATURE COMMUNICATIONS, 2012, 3
  • [3] Hollow-Structure Pt-Ni Nanoparticle Electrocatalysts for Oxygen Reduction Reaction
    Wang, Quan
    Mi, Baosen
    Zhou, Jun
    Qin, Ziwei
    Chen, Zhuo
    Wang, Hongbin
    MOLECULES, 2022, 27 (08):
  • [4] Electrocatalytic Oxygen Reduction on Dealloyed Pt1-xNix Alloy Nanoparticle Electrocatalysts
    Stefan Rudi
    Xenia Tuaev
    Peter Strasser
    Electrocatalysis, 2012, 3 : 265 - 273
  • [5] Electrocatalytic Oxygen Reduction on Dealloyed Pt1-xNix Alloy Nanoparticle Electrocatalysts
    Rudi, Stefan
    Tuaev, Xenia
    Strasser, Peter
    ELECTROCATALYSIS, 2012, 3 (3-4) : 265 - 273
  • [6] Simultaneous Electrochemical Measurement of Oxygen Reduction and Pt Oxide Formation/Reduction on Pt Nanoparticle Surface
    Sugawara, Seiho
    Tsujita, Kohei
    Mitsushima, Shigenori
    Shinohara, Kazuhiko
    Ota, Ken-ichiro
    ELECTROCATALYSIS, 2011, 2 (01) : 60 - 68
  • [7] Simultaneous Electrochemical Measurement of Oxygen Reduction and Pt Oxide Formation/Reduction on Pt Nanoparticle Surface
    Seiho Sugawara
    Kohei Tsujita
    Shigenori Mitsushima
    Kazuhiko Shinohara
    Ken-ichiro Ota
    Electrocatalysis, 2011, 2 : 60 - 68
  • [8] Influence of the preparation route of bimetallic Pt-Au nanoparticle electrocatalysts for the oxygen reduction reaction
    Hernandez-Fernandez, P.
    Rojas, S.
    Ocon, P.
    Gomez de la Fuente, J. L.
    Fabian, J. San
    Sanza, J.
    Pena, M. A.
    Garcia-Garcia, F. J.
    Terreros, P.
    Fierro, J. L. G.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2007, 111 (07): : 2913 - 2923
  • [9] Size-dependent oxygen reduction property of octahedral Pt-Ni nanoparticle electrocatalysts
    Zhang, Changlin
    Hwang, Sang Youp
    Peng, Zhenmeng
    JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (46) : 19778 - 19787
  • [10] Electrochemical observation of ligand effects on oxygen reduction at ligand-stabilized Pt nanoparticle electrocatalysts
    Pietron, J. J.
    Garsany, Y.
    Baturina, O.
    Swider-Lyons, K. E.
    Stroud, R. M.
    Ramaker, D. E.
    Schull, T. L.
    ELECTROCHEMICAL AND SOLID STATE LETTERS, 2008, 11 (08) : B161 - B165