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How fragility makes phase-change data storage robust: insights from ab initio simulations

机译:脆弱性如何使相变数据存储变得强大:从头算仿真得出的见解

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摘要

Phase-change materials are technologically important due to their manifold applications in data storage. Here we report on ab initio molecular dynamics simulations of crystallization of the phase change material Ag4In3Sb67Te26 (AIST). We show that, at high temperature, the observed crystal growth mechanisms and crystallization speed are in good agreement with experimental data. We provide an in-depth understanding of the crystallization mechanisms at the atomic level. At temperatures below 550 K, the computed growth velocities are much higher than those obtained from time-resolved reflectivity measurements, due to large deviations in the diffusion coefficients. As a consequence of the high fragility of AIST, experimental diffusivities display a dramatic increase in activation energies and prefactors at temperatures below 550 K. This property is essential to ensure fast crystallization at high temperature and a stable amorphous state at low temperature. On the other hand, no such change in the temperature dependence of the diffusivity is observed in our simulations, down to 450 K. We also attribute this different behavior to the fragility of the system, in combination with the very fast quenching times employed in the simulations.
机译:相变材料由于其在数据存储中的广泛应用而在技术上很重要。在这里,我们报告相变材料Ag4In3Sb67Te26(AIST)的结晶的从头算分子动力学模拟。我们表明,在高温下,观察到的晶体生长机理和结晶速度与实验数据良好吻合。我们提供了对原子级结晶机制的深入了解。在低于550 K的温度下,由于扩散系数存在较大偏差,因此计算出的生长速度远高于通过时间分辨反射率测量获得的速度。由于AIST的高脆性,实验扩散性在550 K以下的温度下显示出活化能和前因子的急剧增加,该特性对于确保高温下的快速结晶和低温下的稳定非晶态至关重要。另一方面,在我们的模拟中,未观察到扩散率对温度的依赖关系的这种变化,低至450.K.我们还将这种不同的行为归因于系统的脆弱性,并结合了非常快的淬灭时间。模拟。

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