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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Ion-Specific and Thermal Effects in the Stabilization of the Gas Nanobubble Phase in Bulk Aqueous Electrolyte Solutions
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Ion-Specific and Thermal Effects in the Stabilization of the Gas Nanobubble Phase in Bulk Aqueous Electrolyte Solutions

机译:本体水溶液中气体纳米气泡相稳定过程中的离子特异性和热效应

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摘要

Ion-stabilized nanobubbles in bulk aqueous solutions of various electrolytes were investigated. To understand the ion-specific mechanism of nanobubble stabilization, an approach based on the Poisson-Boltzmann equation at the nanobubble interface and in the near-surface layer was developed. It has been shown that the stabilization of nanobubbles is realized by the adsorption of chaotropic anions at the interface, whereas the influence of cosmotropic cations is weak. With increasing temperature, it should be accounted for by blurring the interface due to thermal fluctuations. As a result, the adsorbed state of ions becomes unstable: the nanobubble loses its stability and vanishes. This prediction was proven in our experiments. It turned out that in the case of liquid samples being kept in hermetically sealed ampules, where the phase equilibrium at the liquid-gas interface is fulfilled for any temperature, the volume number density of nanobubbles decreases with increasing temperature and this decrease is irreversible.
机译:研究了各种电解质的本体水溶液中的离子稳定纳米气泡。为了了解纳米气泡稳定化的离子特异性机理,开发了一种基于Poisson-Boltzmann方程的纳米气泡界面和近表面层的方法。已经表明,纳米气泡的稳定化是通过界面上离液阴离子的吸附来实现的,而对同相阳离子的影响则微弱。随着温度的升高,应通过热波动使界面模糊来解决。结果,离子的吸附状态变得不稳定:纳米气泡失去了稳定性并消失了。我们的实验证明了这一预测。事实证明,在将液体样品保存在气密密封的安瓿瓶中的情况下,在任何温度下液-气界面处的相平衡都可以实现,纳米气泡的体积数密度随温度的升高而降低,并且这种降低是不可逆的。

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