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Molecular Dynamics Simulations of the Roller Nanoimprint Process: Adhesion and Other Mechanical Characteristics

机译:滚子纳米压印过程的分子动力学模拟:附着力和其他机械特性

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摘要

Molecular dynamics simulations using tight-binding many body potential are carried out to study the roller imprint process of a gold single crystal. The effect of the roller tooth’s taper angle, imprint depth, imprint temperature, and imprint direction on the imprint force, adhesion, stress distribution, and strain are investigated. A two-stage roller imprint process was obtained from an imprint force curve. The two-stage imprint process included the imprint forming with a rapid increase of imprint force and the unloading stage combined with the adhesion stage. The results show that the imprint force and adhesion rapidly increase with decreasing taper angle and increasing imprint depth. The magnitude of the maximum imprint force and the time at which this maximum occurs are proportional to the imprint depth, but independent of the taper angle. In a comparison of the imprint mechanisms with a vertical imprint case, while high stress and strain regions are concentrated below the mold for vertical imprint, they also occur around the mold in the case of roller imprint. The regions were only concentrated on the substrate atoms underneath the mold in vertical imprint. Plastic flow increased with increasing imprint temperature.
机译:进行了利用紧密结合的许多体势的分子动力学模拟,以研究金单晶的辊压过程。研究了轮齿的锥角,压印深度,压印温度和压印方向对压印力,附着力,应力分布和应变的影响。从压印力曲线​​获得了两阶段的辊压印工艺。两阶段的压印过程包括压印力快速增加的压印成型和卸载阶段与粘合阶段相结合。结果表明,随着锥角的减小和压印深度的增加,压印力和附着力迅速增加。最大压印力的大小和出现最大值的时间与压印深度成正比,但与锥角无关。在将压印机构与垂直压印机壳进行比较时,虽然高应力和应变区域集中在用于垂直压印的模具下方,但在辊压印机的情况下,它们也会出现在模具周围。这些区域仅以垂直印记集中在模具下方的基材原子上。塑性流动随着压印温度的升高而增加。

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