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In situ investigation of explosive crystallization in a-Ge: Experimental determination of the interface response function using dynamic transmission electron microscopy

机译:a-Ge中炸药结晶的原位研究:使用动态透射电子显微镜实验确定界面响应函数

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摘要

The crystallization of amorphous semiconductors is a strongly exothermic process. Once initiated the release of latent heat can be sufficient to drive a self-sustaining crystallization front through the material in a manner that has been described as explosive. Here, we perform a quantitative in situ study of explosive crystallization in amorphous germanium using dynamic transmission electron microscopy. Direct observations of the speed of the explosive crystallization front as it evolves along a laser-imprinted temperature gradient are used to experimentally determine the complete interface response function (i.e., the temperature-dependent front propagation speed) for this process, which reaches a peak of 16 m/s. Fitting to the Frenkel-Wilson kinetic law demonstrates that the diffusivity of the material locally/immediately in advance of the explosive crystallization front is inconsistent with those of a liquid phase. This result suggests a modification to the liquid-mediated mechanism commonly used to describe this process that replaces the phase change at the leading amorphous-liquid interface with a change in bonding character (from covalent to metallic) occurring in the hot amorphous material.
机译:非晶半导体的结晶是强烈的放热过程。一旦开始释放潜热,就足以以一种已描述为爆炸性的方式驱动自维持的结晶前沿穿过材料。在这里,我们使用动态透射电子显微镜对非晶态锗中的爆炸结晶进行了定量的原位研究。直接观察爆炸物沿激光刻印的温度梯度演化时的速度,可用于实验确定此过程的完整界面响应函数(即与温度有关的前沿传播速度),达到峰值16 m / s。拟合Frenkel-Wilson动力学定律表明,在爆炸结晶前沿之前,材料在局部/中间的扩散率与液相的扩散率不一致。该结果表明对通常用于描述该过程的液体介导机制的一种修改,该替换用在热的非晶态材料中发生的键合特性(从共价到金属)的变化代替了前导非晶态-液态界面处的相变。

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