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首页> 外文期刊>Electrochimica Acta >Hydrogen oxidation kinetics on model Pd/C electrodes: Electrochemical impedance spectroscopy and rotating disk electrode study
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Hydrogen oxidation kinetics on model Pd/C electrodes: Electrochemical impedance spectroscopy and rotating disk electrode study

机译:Pd / C型电极上的氢氧化动力学:电化学阻抗谱和转盘电极研究

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This work reports on the kinetics of the hydrogen oxidation reaction (HOR) on model Pd nanoparticles supported on a low surface area carbon substrate. Two Pd/C samples, with the average particle size 2.6 and 4.0 nm were used. The structure of the catalysts was characterized with the ex situ (electron microscopy) and in situ (electrochemical) methods. We utilized the electrochemical impedance spectroscopy (EIS) and the rotating disk electrode (RDE) voltammetry to study the kinetics of the HOR on Pd/C. The relevance of these techniques for elucidating the kinetics and the mechanism of the HOR on Pd/C was explored. The experimental results suggest that the catalytic activity of Pd in the HOR is more than 2 orders of magnitude lower than that of Pt, and does not depend on the particle size in the range from 2.6 to 4.0 nm. Computational modeling of the experimental steady-state (RDE) and non-steady-state (EIS) data shows that the reaction kinetics can be adequately described within Heyrovsky-Volmer mechanism, with the rate constants v_(OH) =(8.8 ±1.5) × 10~(-10) mol cm~(-2) s~(-1) and v_(OV) = (1.0±0.3) × 10~(-8) mol cm~(-2)s~(-1).The model suggests that underpotentially deposited hydrogen H_(UPD) is unlikely to be the active intermediate H_(ad) of the HOR. It is concluded that the surface coverage of H_(ad) deviates from that of H_(UPD) with increasing overpotential, and the lateral interactions within H_(ad) adlayer are weak.
机译:这项工作报告了在低表面积碳基材上负载的模型Pd纳米颗粒上的氢氧化反应(HOR)的动力学。使用了两个Pd / C样品,平均粒径分别为2.6和4.0 nm。用异位(电子显微镜)和原位(电化学)方法表征催化剂的结构。我们利用电化学阻抗谱(EIS)和旋转盘电极(RDE)伏安法研究了HOR在Pd / C上的动力学。探索了这些技术对阐明HOR在Pd / C上的动力学和机理的相关性。实验结果表明,Pd在HOR中的催化活性比Pt的催化活性低2个数量级,并且与2.6至4.0 nm范围内的粒径无关。实验稳态(RDE)和非稳态(EIS)数据的计算模型表明,在Heyrovsky-Volmer机理内可以充分描述反应动力学,速率常数v_(OH)=(8.8±1.5) ×10〜(-10)mol cm〜(-2)s〜(-1)和v_(OV)=(1.0±0.3)×10〜(-8)mol cm〜(-2)s〜(-1) )。该模型表明,潜在沉积的氢H_(UPD)不太可能是HOR的活性中间体H_(ad)。结论是H_(ad)的表面覆盖率随H_(UPD)的超电势的增加而偏离,并且H_(ad)附加层内部的横向相互作用较弱。

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