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In situ Determination of Surface Tension-to-Shear Viscosity Ratio for Quasiliquid Layers on Ice Crystal Surfaces

机译:冰晶表面准液层表面张力与剪切粘度比值的原位测定

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摘要

We have experimentally determined the surface tension-to-shear viscosity ratio (the so-called characteristic velocity) of quasiliquid layers (QLLs) on ice crystal surfaces from their wetting dynamics. Using an advanced optical microscope, whose resolution reaches the molecular level in the height direction, we directly observed the coalescent process of QLLs and followed the relaxation modes of their contact lines. The relaxation dynamics is known to be governed by the characteristic velocity, which allows us to access the physical properties of QLLs in a noninvasive way. Here we quantitatively demonstrate that QLLs, when completely wetting ices, have a thickness of 9 +/- 3 nm and an approximately 200 times lower characteristic velocity than bulk water, whereas QLLs, when partially wetting ices, have a velocity that is 20 times lower than the bulk. This indicates that ice crystal surfaces significantly affect the physical properties of QLLs localized near the surfaces at a nanometer scale.
机译:我们已经通过实验确定了冰晶表面上准液层(QLLs)的表面张力与剪切粘度之比(所谓的特征速度),其润湿动力学。使用先进的光学显微镜,其分辨率在高度方向上达到了分子水平,我们直接观察了QLL的聚结过程并遵循了它们接触线的弛豫模式。已知松弛动力学受特征速度控制,这使我们能够以非侵入性方式访问QLL的物理特性。在这里,我们定量地证明,当完全润湿冰时,QLL的厚度为9 +/- 3 nm,其特征速度比散装水低约200倍,而当部分润湿冰时,QLL的速度要低20倍比散装这表明冰晶表面以纳米尺度显着影响位于表面附近的QLL的物理性质。

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