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Room Temperature Nanojoining of Triangular and Hexagonal Silver Nanodisks

机译:三角形和六角形银纳米盘的室温纳米连接

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Room temperature nanojoining is an important phenomenon that has to be understood well for use in different applications, for example, for assembly of nanoscale building blocks into nanoscale and microscale structures and devices. However, the mechanism for nanoparticle joining at room temperature is not well established. In this research, we employed molecular dynamics simulation to explain how and why silver nanodisks are joined/assembled but with their original shape unchanged. To support our theoretical observations, we compared our simulation results to SEM and HRTEM observations of joined silver nanodisks. It was found that joining at a wide temperature range (1—500 K) can be done through short movement and rearrangement of surface atoms and subsequent elastic or plastic deformation of the particles, resulting in perfect crystal alignment at the joint interface. Our simulation shows the crystal defects such as dislocations due to initial lattice mismatch of the crystals can be sintered out to yield a perfect crystalline structure at the interface between joined particles, which is supported by the experimental observations.
机译:室温下的纳米连接是一种重要的现象,对于将其用于不同的应用(例如,将纳米级构建基块组装成纳米级和微米级结构和设备),必须很好地理解。然而,在室温下纳米粒子结合的机制尚未很好地建立。在这项研究中,我们使用分子动力学模拟来解释如何和为什么连接/组装银纳米盘,但其原始形状没有变化。为了支持我们的理论观察,我们将模拟结果与连接的银纳米盘的SEM和HRTEM观察进行了比较。发现在宽温度范围(1-500 K)下的连接可以通过表面原子的短距离移动和重新排列以及随后的粒子弹性或塑性变形来实现,从而在连接界面处实现完美的晶体排列。我们的模拟表明,可以烧结出晶体缺陷,例如由于晶体的初始晶格失配而导致的位错,可以在结合的颗粒之间的界面处产生完美的晶体结构,这得到了实验观察的支持。

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