Literature DB >> 17129013

Electrochemical surface characterization and O2 reduction kinetics of Se surface-modified ru nanoparticle-based RuSe(y)/C catalysts.

L Colmenares1, Z Jusys, R J Behm.   

Abstract

The electrochemical properties of Se surface-modified Ru/C catalysts (RuSey/C with y = 0 to 1) and their O2 reduction characteristics were determined in model studies under well-defined mass transport conditions, combining quantitative differential electrochemical mass spectrometry and double-disk electrode thin-layer flow-cell measurements. Surface characterization of the catalysts including the quantitative evaluation of the active surface area was performed by electrochemical/mass spectrometric (combined H-upd adsorption, preadsorbed CO monolayer oxidation, Cu-upd adsorption/stripping, and RuOx formation) methods. The suitability of these methods for the determination of the active surface area in the high and low Se coverage regime are discussed, and COad stripping is found to be the most relevant method for the present catalysts. The kinetic parameters for the ORR (activity and selectivity) under quasi-steady-state conditions and their variation with Se modification were evaluated in potentiostatic flow-cell measurements. Modification of Ru/C catalyst by Se improves the O2 reduction activity and reduces the tendency for H2O2 formation in the technically relevant potential region of 0.6-0.8 VRHE, but even for the best catalyst compositions a significant ( approximately 0.2 VRHE) overpotential for O2 reduction on the RuSey/C catalysts remains compared to that for the Pt/C catalyst, and we find H2O2 yields of at least 1% at typical cathode operation potentials. Consequences of the relatively high H2O2 yields for membrane/electrode stability in practical applications are discussed.

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Year:  2006        PMID: 17129013     DOI: 10.1021/la061245d

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  2 in total

1.  Evoking ordered vacancies in metallic nanostructures toward a vacated Barlow packing for high-performance hydrogen evolution.

Authors:  Zhicheng Zhang; Guigao Liu; Xiaoya Cui; Yue Gong; Ding Yi; Qinghua Zhang; Chongzhi Zhu; Faisal Saleem; Bo Chen; Zhuangchai Lai; Qinbai Yun; Hongfei Cheng; Zhiqi Huang; Yongwu Peng; Zhanxi Fan; Bing Li; Wenrui Dai; Wei Chen; Yonghua Du; Lu Ma; Cheng-Jun Sun; Inhui Hwang; Shuangming Chen; Li Song; Feng Ding; Lin Gu; Yihan Zhu; Hua Zhang
Journal:  Sci Adv       Date:  2021-03-24       Impact factor: 14.136

2.  Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction.

Authors:  Yongmin He; Pengyi Tang; Zhili Hu; Qiyuan He; Chao Zhu; Luqing Wang; Qingsheng Zeng; Prafful Golani; Guanhui Gao; Wei Fu; Zhiqi Huang; Caitian Gao; Juan Xia; Xingli Wang; Xuewen Wang; Chao Zhu; Quentin M Ramasse; Ao Zhang; Boxing An; Yongzhe Zhang; Sara Martí-Sánchez; Joan Ramon Morante; Liang Wang; Beng Kang Tay; Boris I Yakobson; Achim Trampert; Hua Zhang; Minghong Wu; Qi Jie Wang; Jordi Arbiol; Zheng Liu
Journal:  Nat Commun       Date:  2020-01-02       Impact factor: 14.919

  2 in total

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