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Growth mechanism for nanotips in high electric fields

机译:高电场纳米纳米纳米的生长机制

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In this work we show using atomistic simulations that the biased diffusion in high electric field gradients creates a mechanism whereby nanotips may start growing from small surface asperities. It has long been known that atoms on a metallic surface have biased diffusion if electric fields are applied and that microscopic tips may be sharpened using fields, but the exact mechanisms have not been well understood. Our Kinetic Monte Carlo simulation model uses a recently developed theory for how the migration barriers are affected by the presence of an electric field. All parameters of the model are physically motivated and no fitting parameters are used. The model has been validated by reproducing characteristic faceting patterns of tungsten surfaces that have in previous experiments been observed to only appear in the presence of strong electric fields. The growth effect is found to be enhanced by increasing fields and temperatures.
机译:在这项工作中,我们示出了使用原子模拟,即高电场梯度的偏置扩散产生了一种机制,其中纳米以纳米可以从小表面粗糙度生长。 如果施加电场并且使用田地可以锐化微观尖端,则金属表面上的原子具有偏置的扩散,但是使用田地可以锐化。但是,尚未得到很好的机制。 我们的动力学蒙特卡罗模拟模型使用最近开发的理论,了解迁移障碍是如何受电场的存在影响。 模型的所有参数都是物理上动机,没有使用拟合参数。 通过再现在先前实验中的钨表面的特征分型图案来验证该模型,该特征在观察到的实验中仅出现在强电场的存在中。 发现增长效应通过增加田地和温度来增强。

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