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Crystallization seeds favour crystallization only during initial growth

机译:晶种仅在初始生长期间才有利于晶种

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Crystallization represents the prime example of a disorder-order transition. In realistic situations, however, container walls and impurities are frequently present and hence crystallization is heterogeneously seeded. Rarely the seeds are perfectly compatible with the thermodynamically favoured crystal structure and thus induce elastic distortions, which impede further crystal growth. Here we use a colloidal model system, which not only allows us to quantitatively control the induced distortions but also to visualize and follow heterogeneous crystallization with single-particle resolution. We determine the sequence of intermediate structures by confocal microscopy and computer simulations, and develop a theoretical model that describes our findings. The crystallite first grows on the seed but then, on reaching a critical size, detaches from the seed. The detached and relaxed crystallite continues to grow, except close to the seed, which now prevents crystallization. Hence, crystallization seeds facilitate crystallization only during initial growth and then act as impurities.
机译:结晶代表无序转变的主要例子。然而,在实际情况下,经常会出现容器壁和杂质,因此结晶是异质的。种子很少与热力学有利的晶体结构完全相容,因此会引起弹性变形,从而阻碍晶体的进一步生长。在这里,我们使用胶体模型系统,该系统不仅允许我们定量控制诱发的畸变,而且还可以可视化并跟踪具有单粒子分辨率的异质结晶。我们通过共聚焦显微镜和计算机模拟确定了中间结构的顺序,并开发了描述我们的发现的理论模型。微晶首先在种子上生长,然后在达到临界尺寸时从种子上脱离。分离并松弛的微晶继续生长,除了靠近晶种,从而阻止了结晶。因此,结晶种子仅在初始生长期间促进结晶,然后充当杂质。

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