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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Growth and Detachment of Oxygen Bubbles Induced by Gold-Catalyzed Decomposition of Hydrogen Peroxide
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Growth and Detachment of Oxygen Bubbles Induced by Gold-Catalyzed Decomposition of Hydrogen Peroxide

机译:通过过氧化氢的金催化分解诱导的氧气泡沫的生长和分离

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摘要

Whereas bubble growth out of gas-oversatured solutions has been quite well understood, including the formation and stability of surface nanobubbles, this is not the case for bubbles forming on catalytic surfaces due to catalytic reactions, though it has important implications for gas evolution reactions and self-propulsion of micro/nanomotors fueled by bubble release. In this work we have filled this gap by experimentally and theoretically examining the growth and detachment dynamics of oxygen bubbles from hydrogen peroxide decomposition catalyzed by gold. We measured the bubble radius R(t) as a function of time by confocal microscopy and find R(t) alpha t(1/2). This diffusive growth behavior demonstrates that the bubbles grow from an oxygen-oversaturated environment. For several consecutive bubbles detaching from the same position in a short period of time, a well-repeated growing behavior is obtained from which we conclude the absence of noticeable depletion effect of oxygen from previous bubbles or increasing oversaturation from the gas production. In contrast, for two bubbles far apart either in space or in time, substantial discrepancies in their growth rates are observed, which we attribute to the variation in the local gas oversaturation. The current results show that the dynamical evolution of bubbles is influenced by comprehensive effects combining chemical catalysis and physical mass transfer. Finally, we find that the size of the bubbles at the moment of detachment is determined by the balance between buoyancy and surface tension and by the detailed geometry at the bubbles contact line.
机译:虽然燃气过度解决方案的泡沫增长已经很好地理解,但包括表面纳米泡的形成和稳定性,这不是由于催化反应引起的催化表面上的气泡形成的情况,尽管它对气体进化反应具有重要意义和通过泡沫释放燃料的微/纳米热管的自推进。在这项工作中,我们通过通过实验和理论上检查了由金催化的过氧化氢分解的氧气泡沫的生长和分离动力来填补了这一差距。我们通过共聚焦显微镜测量气泡半径R(t)作为时间的函数,发现R(t)αt(1/2)。这种扩散的生长行为表明气泡从氧过饱和环境生长。对于在短时间内从相同位置脱离的几个连续气泡,获得了重复的生长行为,从中得出从先前的气泡中没有明显的耗竭效果或从气体生产增加过饱和。相比之下,对于空间或时间间隔的两个气泡,观察到其生长速率的大量差异,我们将归因于当地气体过度饱和度的变化。目前的结果表明气泡的动态演变受到结合化学催化和物理传单的综合效果的影响。最后,我们发现脱离瞬间的气泡的大小由浮力和表面张力之间的平衡和气泡接触线的详细几何确定。

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    Max Planck Univ Twente Ctr Complex Fluid Dynam MESA Inst Phys Fluids Grp Fac Sci &

    Technol POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Ctr Complex Fluid Dynam Math &

    Comp Sci MESA Inst BIOS Lab Chip Grp Fac Elect Engn Max Planck Univ POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Ctr Complex Fluid Dynam Math &

    Comp Sci MESA Inst BIOS Lab Chip Grp Fac Elect Engn Max Planck Univ POB 217 NL-7500 AE Enschede Netherlands;

    Univ Twente Ctr Complex Fluid Dynam Math &

    Comp Sci MESA Inst BIOS Lab Chip Grp Fac Elect Engn Max Planck Univ POB 217 NL-7500 AE Enschede Netherlands;

    Max Planck Univ Twente Ctr Complex Fluid Dynam MESA Inst Phys Fluids Grp Fac Sci &

    Technol POB 217 NL-7500 AE Enschede Netherlands;

    Max Planck Univ Twente Ctr Complex Fluid Dynam MESA Inst Phys Fluids Grp Fac Sci &

    Technol POB 217 NL-7500 AE Enschede Netherlands;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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