Characterization and preservation of gold oxides prepared by an oxygen-dc glow discharge from gold films and studied by X-ray photoelectron spectroscopy

被引:0
作者
Morihide Higo
Masaru Mitsushio
Toshifumi Yoshidome
Sadafumi Nakatake
机构
[1] Kagoshima University,Department of Chemistry, Biotechnology, and Chemical Engineering, Graduate School of Science and Engineering
[2] Kagoshima University Innovation Center,undefined
来源
Gold Bulletin | 2020年 / 53卷
关键词
Gold oxide; Oxygen-dc glow discharge; Preservation; Water molecule; Hydrocarbon; X-ray photoelectron spectroscopy;
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摘要
Gold oxides with thicknesses of less than 1 nm that were prepared by an oxygen-dc glow discharge over various periods (0.5–10 min) from gold films at room temperature were characterized by X-ray photoelectron spectroscopy (XPS), and a preservation method was developed for these oxides. The O 1s spectra show three oxygen species comprising components I, II, and III in the gold oxides. Components I and II are both stable and assigned to hydroxyl groups. The angular dependence of the XPS spectra of the gold oxides indicates that the oxygen species of components I and II are present in this order from the top surface of the gold oxide (component III). The gold oxides decompose after 36 h at room temperature and decompose immediately at temperatures exceeding 121 °C in a dark atmosphere. These gold oxides also decompose under ultraviolet (UV) light irradiation (254, 302, and 365 nm) at room temperature and decompose more rapidly in water vapor at the shorter wavelengths. These findings indicate that the gold oxide decomposition is accelerated via a reaction with excited water molecules produced by UV light absorption. The gold oxide decomposes after 6 h in water but decomposes more slowly in hydrocarbons (hexane, octane, and dodecane) at room temperature in a dark atmosphere. The gold oxide can be preserved in the oxidized state for 84 days in anhydrous dodecane. This simple preservation method of a gold oxide immersed in a hydrocarbon with low water content will be helpful for practical use in future applications.
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页码:77 / 92
页数:15
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  • [11] Rodahl M(2007)Removal of self-assembled monolayers of alkanethiolates on gold by plasma cleaning Mosc Univ Chem Bull 62 343-349
  • [12] Saliba N(2009)Oxidation of the polycrystalline gold foil surface and XPS study of oxygen states in oxide layers Appl Suf Sci 256 1382-1390
  • [13] Parker DH(2015)Low-pressure plasma cleaning of Au and PtIr noble metal surfaces J Struct Chem 56 557-565
  • [14] Koel BE(1988)An XPS and TPD study of gold oxide films obtained by exposure to RF-activated oxygen Appl Surf Sci 32 122-140
  • [15] Klyushin AY(2005)An XPS study of air corona discharge-induced corrosion products at Cu, Ag, and Au ground plates Thin Solid Films 472 49-57
  • [16] Rocha TCR(2006)Gold oxide thin film grown by pulsed laser deposition in an O Jpn J Appl Phys 45 5646-5649
  • [17] Hävecker M(2007) atmosphere IEEJ Trans Sens Micromach 127 253-257
  • [18] Knop-Gericke A(2009)Electrodeposition of organic dielectric film and its application to vibrational microelectromechanical system devices Jpn J Appl Phys 48 026501-1-026501-3
  • [19] Schlögl R(2012)Conformal coating of organic dielectric film on gold electrodes in microelectromechanical system devices by electrodeposition Jpn J Appl Phys 51 066501-1-066501-3
  • [20] Koslowski B(2018)Surface cleaning of gold structure by annealing during fabrication of microelectromechanical system devices Jpn J Appl Phys 57 04FC12-1-04FC12-6