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A SERS Study of the Interaction of n-Octanohydroxamate with a Copper Electrode

机译:正辛基异羟肟酸酯与铜电极相互作用的SERS研究

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摘要

SERS spectroelectrochemical investigations have demonstrated that the flotation collector n-octanohydroxamate specifically adsorbs on copper surfaces in the region of thermodynamic stability of the metal and, at low ionic strength, this gives rise to a contact angle of ~ 70°. The contact angle fell to zero when Cu_2O was formed on the copper surface and increased again to ~ 70° when the potential was increased further. Voltammetry established that, in 0.01 M KOH, the presence of hydroxamate in concentrations of 10~(-3) M and above retards the rate of formation of Cu_2O and indicates that a stability zone of copper n-octanohydroxamate replaces that of hydrated CuO. It is concluded that the development of a copper n-octanohydroxamate layer is responsible for the copper oxide surface being rendered hydrophobic at high potentials. SERS investigations of the copper/hydroxamate system is considered not to be an appropriate model for advancing understanding of the interaction of this collector with oxidized mineral surfaces.
机译:SERS光谱电化学研究表明,浮选捕收剂正辛酸异羟肟酸酯在金属的热力学稳定性区域内特异性吸附在铜表面上,并且在低离子强度下产生的接触角约为70°。当在铜表面上形成Cu_2O时,接触角降至零,而当电势进一步提高时,接触角再次增至〜70°。伏安法表明,在0.01 M KOH中,浓度为10〜(-3)M及以上的异羟肟酸酯的存在会延迟Cu_2O的形成速率,并表明正辛基异羟肟酸铜的稳定区代替了水合CuO的稳定区。结论是正辛酸异羟肟酸铜层的发展是导致氧化铜表面在高电势下具有疏水性的原因。铜/异羟肟酸酯系统的SERS研究被认为不是促进了解该捕收剂与氧化矿物表面相互作用的合适模型。

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  • 来源
  • 会议地点 Vancouver(CA);Vancouver(CA);Vancouver(CA)
  • 作者单位

    School of Biomolecular and Physical Sciences, Griffith University, Nathan, QLD, 4111,Australia;

    School of Biomolecular and Physical Sciences, Griffith University, Nathan, QLD, 4111,Australia;

    School of Biomolecular and Physical Sciences, Griffith University, Nathan, QLD, 4111,Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 电化学工业;
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