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Shrinkage mechanisms of grain boundary loops in two-dimensional colloidal crystals

机译:二维胶体晶体中晶界环路的收缩机制

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摘要

We discuss the various mechanisms involved in the spontaneous shrinkage of circular grain boundaries in two-dimensional colloidal crystals. We provide experimental evidence that these grain boundary loops shrink owing to three intermittent mechanisms proposed for atomic materials, namely purely curvature-driven migration, coupled grain boundary migration, and grain boundary sliding. Throughout shrinkage, the product of the radius and misorientation of the grain boundary loop remains higher than a fundamental limit resulting from the specific dislocation structure of grain boundary loops, except for the very last stage where the loop character is lost. Despite its complexity, this process can be effectively described by a single kinetic coefficient, allowing for a simplified description of grain boundary loop kinetics.
机译:我们讨论了二维胶体晶体中圆形晶界自发收缩的各种机制。 我们提供实验证据,即由于三种用于原子材料,即纯曲率驱动的迁移,耦合晶界迁移和晶界滑动的三种间歇机构,这些晶界回路缩小。 在整个收缩过程中,晶界环路的半径和错误化的乘积仍然高于晶界循环的特定位错结构导致的基本限制,除了循环字符丢失的最后阶段之外。 尽管其复杂性,但是可以通过单个动力学系数有效地描述该过程,允许简化对晶界环路动力学的简化描述。

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