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Direct Evidence for Curvature-Dependent Surface Tension in Capillary Condensation: Kelvin Equation at Molecular Scale

机译:毛细血管缩合中曲率依赖性表面张力的直接证据:分子尺度的Kelvin方程

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Capillary condensation is the first-order vapor-to-liquid phase transition taking place in confined geometries. Such heterogeneous nucleation has been well described by thermodynamic laws such as the Kelvin equation, but the equation’s applicability at the nanoscale is still unresolved. Here, we show that the Kelvin equation is valid down to approximately 0.5?nm radius of curvature when the curvature dependence of surface tension is taken into account. By the shear-mode atomic force microscopy, we have measured directly and accurately the critical tip-surface distance ( d c ) at which the water meniscus is capillary condensed in ambient condition; e.g., d c ≈ 1.2 nm at 10% relative humidity. In particular, we can determine the Tolman length, the unique characteristic of the curvature-dependent surface tension, as the single fitting parameter ( δ = 0.21 ± 0.05 nm ). Our results that unify the validity of the Kelvin equation at molecular scale and the characterization of the curvature effect of surface tension may provide a better understanding of general nucleation phenomena in nature, including the role of nanometric aerosols in cloud formation.
机译:毛细血管缩合是在狭窄的几何形状中进行的一阶蒸汽对液相过渡。这种异构成核通过热力学定律(如Kelvin方程)很好地描述,但是在纳米级的方程的适用性仍未得到解决。在这里,当考虑到表面张力的曲率依赖性时,凯尔文方程有效期为大约0.5Ω·nm曲率半径。通过剪切模式原子力显微镜显微镜,我们已经直接测量,准确地测量了水弯料在环境条件下凝聚的临界尖端表面距离(D C);例如,在10%相对湿度下DC≈1.2nm。特别地,我们可以确定曲率长度,依赖依赖性表面张力的独特特性,作为单个配件参数(δ= 0.21±0.05nm)。我们的结果,统一在分子尺度时统一开尔文方程的有效性,表面张力的曲率效果的表征可以更好地理解本质上的一般成核现象,包括纳米气溶胶在云层中的作用。

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