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首页> 外文期刊>Journal of power sources >Ethanol electrooxidation on a carbon-supported Pt catalyst at elevated temperature and pressure: A high-temperature/high-pressure DEMS study
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Ethanol electrooxidation on a carbon-supported Pt catalyst at elevated temperature and pressure: A high-temperature/high-pressure DEMS study

机译:碳负载的Pt催化剂在高温和高压下的乙醇电氧化:高温/高压DEMS研究

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摘要

The electrooxidation of ethanol on a Pt/Vulcan catalyst was investigated in model studies by on-line differential electrochemical mass spectrometry (DEMS) over a wide range of reaction temperatures (23-100℃). Potentiodynamic and potentiostatic measurements of the Faradaic current and the CO_2 formation rate, performed at 3 bar overpressure under well-defined transport and diffusion conditions reveal significant effects of temperature, potential and ethanol concentration on the total reaction activity and on the selectivity for the pathway toward complete oxidation to CO_2. The latter pathway increasingly prevails at higher temperature, lower concentration and lower potentials (~90% current efficiency for CO_2 formation at 100℃, 0.01 M, 0.48 V), while at higher ethanol concentrations (0.1 M), higher potentials or lower temperatures the current efficiency for CO_2 formation drops, reaching values of a few percent at room temperature. These trends result in a significantly higher apparent activation barrier for complete oxidation to CO_2 (68±2 kJ mol~(-1) at 0.48 V, 0.1 M) compared to that of the overall ethanol oxidation reaction determined from the Faradaic current (42 ± 2 kJ mol~(-1) at 0.48 V, 0.1 M). The mechanistic implications of these results and the importance of relevant reaction and mass transport conditions in model studies for reaction predictions in fuel cell applications are discussed.
机译:通过在线差示电化学质谱法(DEMS)在较宽的反应温度范围(23-100℃)内进行模型研究,研究了乙醇在Pt / Vulcan催化剂上的电氧化。在明确定义的传输和扩散条件下,在3 bar超压下对法拉第电流和CO_2形成速率进行的电位动力学和恒电位测量表明,温度,电势和乙醇浓度对总反应活性和通往该途径的选择性具有重大影响完全氧化成CO_2。在较高的温度,较低的浓度和较低的电势下(在100℃,0.01 M,0.48 V下形成CO_2的电流效率约为90%),后一种途径逐渐占主导地位,而在较高的乙醇浓度(0.1 M),较高的电势或较低温度下,CO2的形成途径逐渐增多。 CO_2形成的电流效率下降,在室温下达到百分之几的值。与通过法拉第电流确定的全部乙醇氧化反应相比,这些趋势导致显着更高的表观活化势垒,以完全氧化为CO_2(在0.48 V,0.1 M时,为68±2 kJ mol〜(-1))。 2 kJ mol〜(-1)在0.48 V,0.1 M)。讨论了这些结果的机理含义以及模型研究中有关反应和传质条件对燃料电池应用中反应预测的重要性。

著录项

  • 来源
    《Journal of power sources》 |2009年第1期|2-13|共12页
  • 作者单位

    Institute of Surface Chemistry and Catalysis, Ulm University, D-89069 Ulm, Germany;

    Institute of Surface Chemistry and Catalysis, Ulm University, D-89069 Ulm, Germany;

    Institute of Surface Chemistry and Catalysis, Ulm University, D-89069 Ulm, Germany;

    Institute of Surface Chemistry and Catalysis, Ulm University, D-89069 Ulm, Germany;

    Institute of Surface Chemistry and Catalysis, Ulm University, D-89069 Ulm, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ethanol oxidation; elevated temperature; elevated pressure; DEMS; CO_2 current efficiency; activation energy;

    机译:乙醇氧化;高温高压DEMS;CO_2电流效率;活化能;

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