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Thickness dependent crystallization kinetics of sub-micron amorphous solid water films

机译:亚微米非晶态固体水膜的厚度依赖性结晶动力学

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摘要

The kinetics of isothermal crystallization at the free surface of dense, 150-1050 bilayer (BL) (approx55-385 nm) thick amorphous solid water (ASW) films is investigated experimentally, and a model accounting for the observed thickness dependence is proposed. We find that as the ASW film thickness is increased above 150 BL, surface crystallization accelerates, rapidly at first and then more slowly until essentially size-independent kinetics are attained by 1050 BL. The potential origin of this thickness dependence is elucidated by a geometrical model of surface crystallization that we formulated using mechanistic information deduced from available experimental data. This simple mean-field model predicts that as fill thickness is reduced below some critical value, the number of grants contributing to surface transformation progressively decreases, forcing each grain to convert a larger surface area and thus slowing crystallization. Good agreement between experimental data and the theory is realized using only two thickness-independent kinetic parameters (per temperature), suggesting that the model describes the basic physics of crystallization in these ASW films. Nucleation and growth rates determined via model fits range from approx5.5 X 10~9 cm~(-3) s~(-1) and approx0.3 A/s at 136 K to approx6.5 X 10~(10) cm~(-3) s~(-1) and approx1.5 A/s at 140 K, corresponding to activation energies of 100 and 68 kJ/mol, respectively.
机译:实验研究了稠密的150-1050双层(BL)(约55-385 nm)厚非晶态固态水(ASW)膜的自由表面上的等温结晶动力学,并提出了一个模型,该模型考虑了所观察到的厚度依赖性。我们发现,随着ASW膜厚度增加到超过150 BL,表面结晶开始加速,然后很快,然后再缓慢,直到1050 BL达到基本尺寸无关的动力学为止。这种厚度依赖性的潜在根源通过表面结晶的几何模型得以阐明,我们使用可得的实验数据推导出的机械信息来制定该模型。这个简单的平均场模型预测,随着填充厚度减小到某个临界值以下,有助于表面转变的授权数量会逐渐减少,从而迫使每个晶粒转变更大的表面积,从而减慢结晶速度。仅使用两个与厚度无关的动力学参数(每个温度)即可实现实验数据与理论之间的良好一致性,这表明该模型描述了这些ASW膜中结晶的基本物理原理。通过模型拟合确定的成核和生长速率范围从约5.5 X 10〜9 cm〜(-3)s〜(-1)和136 K时约0.3 A / s到6.5 X 10〜(10)cm在140 K时约为(-3)s〜(-1)和约1.5 A / s,分别对应于100和68 kJ / mol的活化能。

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