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Heat conduction analysis of nano-tip and storage medium in thermal-assisted data storage using molecular dynamics simulation

机译:分子动力学模拟在热辅助数据存储中纳米尖端和存储介质的导热分析

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摘要

In the thermal-assisted data storage technologies, the behavior of heat transfer between the nano-tips and the storage medium during thermo-mechanical data bit formation process is a critical factor affecting the areal storage density, data bit writing/reading speed and system reliability. In this paper, the thermal properties of a nano-tip are analyzed using the non-equilibrium molecular dynamics simulation. The simulated results show that the effects of the nano-structural configuration and boundary conditions on the thermal transport are remarkable, which can be attributed to the phonon boundary-scattering and possible phonon spectrum modification. Furthermore, the heat transfer between the nano-tip and the silicon medium film is simulated. The results show that the medium film can be efficiently heated locally with no pressure force. For a tip-medium contact area of 5.31nm(2), an area of about 95.5nm(2) on the medium surface can be heated with a temporal resolution of 0.11ns. This time period is much smaller than the conduction timescale (approximate to 2 mu s) on the nano-tip in the heat-assisted scanning probe-based data storage technology during data bit writing process.
机译:在热辅助数据存储技术中,在热机械数据位形成过程中,纳米尖端与存储介质之间的传热行为是影响区域存储密度,数据位读写速度和系统可靠性的关键因素。 。在本文中,使用非平衡分子动力学模拟分析了纳米尖端的热性质。仿真结果表明,纳米结构构型和边界条件对热输运的影响显着,这可以归因于声子的边界散射和可能的声子谱修饰。此外,模拟了纳米尖端与硅介质膜之间的热传递。结果表明,在没有压力的情况下可以有效地局部加热介质膜。对于5.31nm(2)的尖端-介质接触区域,可以以0.11ns的时间分辨率加热介质表面上大约95.5nm(2)的区域。该时间段远小于数据位写入过程中基于热辅助扫描探针的数据存储技术中纳米尖端上的传导时间尺度(约2μs)。

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