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首页> 外文期刊>Micron: The international research and review journal for microscopy >Wave-packet numerical investigation of thermal diffuse scattering: A time-dependent quantum approach to electron diffraction simulations
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Wave-packet numerical investigation of thermal diffuse scattering: A time-dependent quantum approach to electron diffraction simulations

机译:热漫射散射的波浪分组数值研究:一种电子衍射模拟的时间依赖量子方法

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摘要

The effects of thermal diffuse scattering on diffraction of highly-accelerated electrons by crystal lattices are investigated with a method that combines the frozen phonon approximation with an exact numerical solution of the time-dependent Schrodinger equation. The phonon configuration for each single-electron diffraction process is determined by means of Einstein's model. It is shown that this procedure provides the possibility of describing and explaining, in a natural way, after averaging over a number of electron realizations, how the typical diffraction features that characterize a fully coherent pattern are gradually suppressed by thermally-induced incoherence. This is achieved by a controlled increase of the lattice atomic vibrations and is in contrast to the use of attenuating Debye-Waller factors and complex potential absorbers. A lattice with reduced dimensionality is first considered as a working model, where the method renders results compatible with those reported in the literature. Subsequently, a full three-dimensional system is simulated and results are compared to experimental imaging displaying the method's reliability.
机译:研究了热漫射散射对晶格的高度加速电子衍射的影响,用与时间依赖的Schrodinger方程的精确数值解相结合的方法。每个单电子衍射过程的声子配置通过Einstein的模型确定。结果表明,该过程提供了以自然方式描述和解释在对许多电子的实现之后进行描述和解释的可能性,典型的衍射特征是如何通过热引起的不连贯逐渐抑制完全相干模式的典型衍射特征。这是通过控制格子原子振动的控制增加来实现的,并且与使用衰减的Debye-Waller因子和复杂的潜在吸收剂相反。具有减少量减少的晶格首先被认为是一个工作模型,其中方法使得与文献中报道的那些相兼容。随后,模拟完整的三维系统,并将结果与​​显示该方法可靠性的实验成像进行比较。

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