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Evaporation-induced cavitation in nanofluidic channels

机译:纳米流体通道中蒸发诱导的空化

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摘要

Cavitation, known as the formation of vapor bubbles when liquids are under tension, is of great interest both in condensed matter science as well as in diverse applications such as botany, hydraulic engineering, and medicine. Although widely studied in bulk and microscale-confined liquids, cavitation in the nanoscale is generally believed to be energetically unfavorable and has never been experimentally demonstrated. Here we report evaporation-induced cavitation in water-filled hydrophilic nanochannels under enormous negative pressures up to -7 MPa. As opposed to receding menisci observed in microchannel evaporation, the menisci in nanochannels are pinned at the entrance while vapor bubbles form and expand inside. Evaporation in the channels is found to be aided by advective liquid transport, which leads to an evaporation rate that is an order of magnitude higher than that governed by Fickian vapor diffusion in macro- and microscale evaporation. The vapor bubbles also exhibit unusual motion as well as translational stability and symmetry, which occur because of a balance between two competing mass fluxes driven by thermocapillarity and evaporation. Our studies expand our understanding of cavitation and provide new insights for phase-change phenomena at the nanoscale.
机译:空化,即在液体处于张力下时形成的汽泡,在凝聚态科学以及植物学,水利工程和医学等各种应用中都引起了极大的兴趣。尽管在散装和微米级受限的液体中进行了广泛的研究,但通常认为纳米级的空化在能量上是不利的,并且从未进行过实验证明。在这里,我们报道了在充满水的亲水性纳米通道中,在高达-7 MPa的巨大负压下蒸发诱导的空化现象。与在微通道蒸发中观察到的弯液面减少相反,纳米通道中的弯液面固定在入口处,而蒸汽气泡形成并在内部膨胀。发现对流液体传输有助于通道中的蒸发,这导致蒸发速率比宏观和微观蒸发中的菲克蒸汽扩散所控制的蒸发速率高一个数量级。汽泡还表现出异常的运动以及平移稳定性和对称性,这是由于热毛细作用和蒸发驱动的两个竞争质量通量之间的平衡而发生的。我们的研究扩大了我们对空化的理解,并为纳米级的相变现象提供了新的见解。

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