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A Unified Description of Attachment-Based Crystal Growth

机译:基于附着的晶体生长的统一描述

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Crystal growth is one of the most fundamental processes in nature. Understanding of crystal growth mechanisms has changed dramatically over the past two decades. One significant advance has been the recognition that growth does not only occur atom by atom, but often proceeds via attachment and fusion of either amorphous or crystalline particles. Results from recent experiments and calculations can be integrated to develop a simple, unified conceptual description of attachment-based crystal growth. This enables us to address three important questions: What are the driving forces for attachment-based growth? For crystalline particles, what enables the particles to achieve crystallographic coalignment? What determines the surface on which attachment occurs? We conclude that the extent of internal nanoparticle order controls the degree of periodicity and anisotropy in the surrounding electrostatic field. For crystalline particles, the orienting force stemming from the electrostatic field can promote oriented attachment events, although solvent-surface interactions modulate this control. In cases where perfect crystallographic alignment is not achieved, misorientation gives rise to structural defects that can fundamentally modify nanomaterial properties.
机译:晶体生长是自然界中最基本的过程之一。在过去的二十年中,对晶体生长机制的了解发生了巨大变化。一个重要的进步是认识到生长不仅会一个原子一个原子地发生,而且通常会通过无定形或结晶颗粒的附着和融合来进行。最近的实验和计算结果可以集成在一起,以开发基于附着物晶体生长的简单,统一的概念描述。这使我们能够解决三个重要问题:基于依恋的增长的驱动力是什么?对于晶体颗粒,是什么使颗粒能够实现晶体学共取向?是什么决定了发生附着的表面?我们得出结论,内部纳米粒子有序的程度控制着周围静电场中周期性和各向异性的程度。对于结晶颗粒,尽管溶剂-表面相互作用调节了这种控制,但源自静电场的定向力会促进定向的附着事件。在无法实现完美的晶体学排列的情况下,取向错误会导致结构缺陷,从根本上改变纳米材料的性能。

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