Maheshwari Shantanu, van der Hoef Martin, Prosperetti Andrea, Lohse Detlef
Physics of Fluids, Max Planck Center Twente for Complex Fluid Dynamics, Mesa+ Institute, and J. M. Burgers Centre for Fluid Dynamics, Department of Science and Technology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands.
Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, Houston, Texas 77204-4006, United States.
J Phys Chem C Nanomater Interfaces. 2018 Sep 13;122(36):20571-20580. doi: 10.1021/acs.jpcc.8b04017. Epub 2018 Aug 17.
We study the formation of a nanobubble around a heated nanoparticle in a bulk liquid by using molecular dynamics simulations. The nanoparticle is kept at a temperature above the critical temperature of the surrounding liquid, leading to the formation of a vapor nanobubble attached to it. First, we study the role of both the temperature of the bulk liquid far away from the nanoparticle surface and the temperature of the nanoparticle itself on the formation of a stable vapor nanobubble. We determine the exact conditions under which it can be formed and compare this with the conditions that follow from a macroscopic heat balance argument. Next, we demonstrate the role of dissolved gas on the conditions required for nucleation of a nanobubble and on its growth dynamics. We find that beyond a certain threshold concentration, the dissolved gas dramatically facilitates vapor bubble nucleation due to the formation of gaseous weak spots in the surrounding liquid.
我们通过分子动力学模拟研究了在本体液体中围绕加热的纳米颗粒形成纳米气泡的过程。纳米颗粒保持在高于周围液体临界温度的温度下,导致在其附着形成蒸汽纳米气泡。首先,我们研究了远离纳米颗粒表面的本体液体温度和纳米颗粒本身的温度对稳定蒸汽纳米气泡形成的作用。我们确定了能够形成纳米气泡的精确条件,并将其与基于宏观热平衡论证得出的条件进行比较。接下来,我们展示了溶解气体对纳米气泡成核所需条件及其生长动力学的作用。我们发现,超过一定阈值浓度后,由于周围液体中形成气态弱点,溶解气体极大地促进了蒸汽气泡的成核。