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Controllable nanoimprinting of metallic glasses: Effect of pressure and interfacial properties

机译:金属玻璃的可控纳米压印:压力和界面性质的影响

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摘要

The quantitative model proposed here for nanoimprinting by thermoplastic compression molding is focused on bulk metallic glasses (BMGs), but it is also applicable to polymers and other thermoplastic materials. In our model the flow and pressure fields are evaluated using the lubrication theory, and the effect of molding pressure, BMG viscosity, and capillary pressure on the spatial distribution of nanoimprinted features is determined. For platinum-based BMG the theory that takes into account capillary pressure but no other surface stresses agrees very well with experimental results. For palladium-based BMG (prone to oxidation) the extended theory includes an additional threshold pressure required to break the oxide layer that forms on the BMG surface. Our analysis provides important insights into flow behavior of BMG supercooled liquids. In particular, a new method for measuring surface tension and viscosity of BMGs and evaluating the strength of the surface oxide layer is demonstrated.
机译:此处提出的用于通过热塑性压缩成型进行纳米压印的定量模型着重于块状金属玻璃(BMG),但它也适用于聚合物和其他热塑性材料。在我们的模型中,使用润滑理论评估了流场和压力场,并确定了成型压力,BMG粘度和毛细管压力对纳米压印特征空间分布的影响。对于铂基BMG,考虑毛细管压力但没有其他表面应力的理论与实验结果非常吻合。对于基于钯的BMG(易于氧化),扩展的理论包括打破在BMG表面形成的氧化层所需的附加阈值压力。我们的分析为BMG过冷液体的流动行为提供了重要的见解。特别地,展示了一种用于测量BMG的表面张力和粘度并评估表面氧化物层的强度的新方法。

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