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Comprehensive characterization of nickel-based metallic foams and their applications as electrocatalyst materials.

机译:镍基金属泡沫的全面表征及其作为电催化剂材料的应用。

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摘要

This contribution explores the applicability of nickel-based metallic foams as active electrodes and as electrocatalyst support materials. A comprehensive characterization of Ni and multi-component Ni-based foams is presented and includes the analysis of their structural, chemical, and electrochemical properties. Several materials and surface science techniques as well as electrochemical methods are used to examine the structural characteristics, surface morphology, and surface-chemical composition of these materials. X-ray photoelectron spectroscopy is employed to analyze the surface and near-surface chemical composition. The specific and electrochemically active surface areas (A s, Aecsa) are determined using cyclic voltammetry (CV). The foams exhibit structural robustness typical of bulk materials and they have large As, in the 200 -- 600 cm2 g --1 range. In addition, they are dual-porosity materials and possess both macro and meso pores.;The applicability of Ni foams as support materials for Pt is investigated. Platinum particles are deposited on Ni foam in low loading amounts via the chemical reduction of Pt2+ and Pt4+ originating from aqueous Pt salt solutions. The resulting Pt / Ni foams are characterized using electrochemical, analytical, and materials analysis techniques, including SEM to examine the morphology of the deposited material, CV to evaluate the Aecsa of the deposited Pt, and inductively coupled plasma optical emission spectrometry (ICP-OES) to determine the mass of deposited Pt. The Pt / Ni foams are applied as electrocatalysts for hydrogen evolution, hydrogen reduction, oxygen evolution, and oxygen reduction reactions in alkaline electrolyte.;Nickel foam electrodes are applied as electrocatalysts for the oxidation of isopropanol. The process is studied under well-defined experimental conditions using cyclic voltammetry. The outcome of these experiments demonstrates that isopropanol oxidation requires the presence of beta-NiOOH on the Ni foam electrode. This surface oxide is generated at potentials near the potential of the isopropanol oxidation; however, the two processes do not occur exactly at the same potentials. The Ni foam anodes sustain a current density of ca. 2.6 mA cm-2 throughout an electrolysis time of up to 600 minutes without significant loss of electrocatalytic activity. Isopropanol is converted to acetone at a rate of ca. 5.6 mM per hour.
机译:这一贡献探索了镍基金属泡沫作为活性电极和电催化剂载体材料的适用性。介绍了镍和多组分镍基泡沫的全面表征,包括对其结构,化学和电化学性能的分析。几种材料和表面科学技术以及电化学方法被用来检查这些材料的结构特征,表面形态和表面化学成分。 X射线光电子能谱用于分析表面和近表面化学成分。使用循环伏安法(CV)确定比表面积和电化学活性表面积(A s,Aecsa)。泡沫材料表现出散装材料特有的结构坚固性,并且具有200-600 cm2 g -1范围内的大As。此外,它们是双孔材料,同时具有大孔和中孔。;研究了泡沫镍作为铂的载体材料的适用性。通过化学还原源自Pt盐水溶液的Pt2 +和Pt4 +,铂颗粒以低负载量沉积在泡沫镍上。使用电化学,分析和材料分析技术对所得的Pt / Ni泡沫进行表征,包括使用SEM检查沉积材料的形态,通过CV评估沉积Pt的Aecsa以及电感耦合等离子体发射光谱(ICP-OES) )以确定沉积的铂的质量。 Pt / Ni泡沫用作碱性催化剂中氢的释放,氢还原,氧的释放和氧还原反应的电催化剂。镍泡沫电极用作氧化异丙醇的电催化剂。使用循环伏安法在明确的实验条件下研究了该过程。这些实验的结果表明,异丙醇氧化需要在镍泡沫电极上存在β-NiOOH。该表面氧化物是在接近异丙醇氧化电位的电位下产生的。但是,这两个过程并没有以完全相同的电位发生。镍泡沫阳极承受的电流密度约为。在长达600分钟的整个电解时间内达到2.6 mA cm-2,而不会明显降低电催化活性。异丙醇的转化率为丙酮。每小时5.6 mM。

著录项

  • 作者

    van Drunen, Julia.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 0 p.
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:40

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