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等离子体纳米颗粒周围的纳米气泡:热力学分析。

Nanobubbles around plasmonic nanoparticles: Thermodynamic analysis.

作者信息

Lombard Julien, Biben Thierry, Merabia Samy

机构信息

Institut Lumière Matière, UMR5306 Université Lyon 1-CNRS, Université de Lyon, 69622 Villeurbanne cedex, France.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Apr;91(4):043007. doi: 10.1103/PhysRevE.91.043007. Epub 2015 Apr 9.

Abstract

We describe the dynamics of vapor nanobubbles in water, on the basis of simulations of a hydrodynamics phase-field model. This situation is relevant to recent experiments, where a water nanobubble is generated around a nanoparticle immersed in water, and heated by an intense laser pulse. We emphasize the importance of nanoscale effects in the dynamics of the nanobubble. We first analyze the evolution of the temperature inside the bubble. We show that the temperature drops by hundredths of kelvins in a few picoseconds, just after nanobubble formation. This is the result of the huge drop of the thermal boundary conductance between the nanoparticle and the fluid accompanying vaporization. Subsequently, the temperature inside the vapor is almost homogeneous and the temperature gradient is concentrated in the liquid, whose thermodynamic state locally follows the saturation line. We discuss also the evolution of the pressure inside the vapor nanobubble. We show that nanobubble generation is accompanied by a pressure wave propagating in the liquid at a velocity close to the liquid speed of sound. The internal pressure inside the vapor just after its formation largely exceeds Laplace pressure and quickly relaxes as a result of the damping generated by the viscous forces. All these considerations shed light on the thermodynamics of the nanobubbles generated experimentally.

摘要

我们基于流体动力学相场模型的模拟,描述了水中蒸汽纳米气泡的动力学。这种情况与最近的实验相关,在这些实验中,一个水纳米气泡在浸没于水中的纳米颗粒周围产生,并由强激光脉冲加热。我们强调了纳米尺度效应在纳米气泡动力学中的重要性。我们首先分析气泡内部温度的演变。我们表明,在纳米气泡形成后仅几皮秒内,温度就下降了百分之几开尔文。这是伴随汽化过程中纳米颗粒与流体之间热边界传导率大幅下降的结果。随后,蒸汽内部的温度几乎是均匀的,温度梯度集中在液体中,其热力学状态局部遵循饱和线。我们还讨论了蒸汽纳米气泡内部压力的演变。我们表明,纳米气泡的产生伴随着一个压力波在液体中以接近液体声速的速度传播。蒸汽形成后其内部压力在很大程度上超过拉普拉斯压力,并由于粘性力产生的阻尼而迅速松弛。所有这些考虑都为实验中产生的纳米气泡的热力学提供了启示。

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