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Defect-driven rotating system based on a double-walled carbon nanotube and graphene

机译:基于双壁碳纳米管和石墨烯的缺陷驱动旋转系统

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摘要

A nanoscale rotating system that consists of a double-walled carbon nanotube (DWCNT) and graphene and is driven by a defect in the graphene is proposed, and its rotating dynamics and driving mechanism are investigated through molecular dynamics simulations. A potential energy difference caused by the presence of the vacancy defect on the graphene substrate causes the outer tube in the DWCNT to stably rotate in a specific direction. The rotational speed of the outer tubem initially increases before reaching a stable speed. This phenomenon indicates that the driving torque is a difference between the sides of the outer tube in the van der Waals potential; this difference in potential is caused by the presence of the defect in the graphene. In addition, the effects of the system temperature, the radius and chiral vectors of the DWCNT, and the location of the defect in the graphene are investigated. The theoretical work reported here should provide a reference for the design of motion systems based on carbon nanotubes and graphene and their applications.
机译:提出了一种由双壁碳纳米管(DWCNT)和石墨烯组成的纳米级旋转系统,并通过石墨烯中的缺陷驱动,并通过分子动力学模拟研究其旋转动力学和驱动机构。由石墨烯基板上存在空位缺陷引起的势能差导致DWCNT中的外管以在特定方向上稳定旋转。在达到稳定速度之前,外管的旋转速度最初增加。这种现象表明驱动扭矩是外管在范德华势的侧面之间的差异;这种潜力的差异是由石墨烯中存在的缺陷引起的。此外,研究了DWCNT的系统温度,半径和手性载体的影响以及石墨烯中的缺陷的位置。这里报道的理论工作应该为基于碳纳米管和石墨烯及其应用提供运动系统的设计的参考。

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