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Molecular dynamics simulation of inertial trapping-induced atomic scale mass transport inside single walled carbon nanotubes

机译:单壁碳纳米管内惯性俘获诱导的原子尺度质量传输的分子动力学模拟

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摘要

The forced transverse vibration of a single-walled carbon nanotube (SWNT) embedded with atomic-size particles was investigated using molecular dynamic simulations. The particles inside the cylindrical cantilever can be trapped near the antinodes or at the vicinity of the SWNT tip. The trapping phenomenon is highly sensitive to the external driving frequencies such that even very small changes in driving frequency can have a strong influence on the probability of the location of the particle inside the SWNT. The trapping effect could potentially be employed to realize the atomic scale control of particle position inside an SWNT via the finite adjustment of the external driving frequency. It may also be suggested that the trapping phenomenon could be utilized to develop high-sensitive mass detectors based on a SWNT resonator.
机译:使用分子动力学模拟研究了嵌入原子尺寸颗粒的单壁碳纳米管(SWNT)的强制横向振动。圆柱形悬臂内部的颗粒可能被束缚在波腹附近或SWNT尖端附近。捕集现象对外部驱动频率高度敏感,因此,即使驱动频率的很小变化也会对颗粒在SWNT内部的位置概率产生很大影响。可以通过有限地调整外部驱动频率来利用俘获效应来实现SWNT内部粒子位置的原子尺度控制。也可能建议使用陷获现象来开发基于SWNT谐振器的高灵敏度质量检测器。

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