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Directional Gradientless Thermoexcited Rotating System Based on Carbon Nanotubes and Graphene

机译:基于碳纳米管和石墨烯的定向渐变无渗透旋转系统

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摘要

The simple and practicable intrinsic driving mechanism is of great significance for the design and development of nanoscale devices. This paper proposes a nanosystem that can achieve directional gradientless thermoexcited rotation at a relatively high temperature field (such as 300?K). In the case of a constant temperature field, the difference in atomic van der Waals (VDW) potentials in different regions of the rotor can be achieved by an asymmetric design of the structure, which provides torque for the rotation of the rotor. We studied the rotation and driving mechanism of the designed system through molecular dynamics (MD) simulation and discussed the influence of the chiral combination of carbon nanotubes, the chirality of graphene substrate, the length of graphene substrate, and the system temperature on rotation. At the same time, this paper also makes a qualitative analysis of the feasibility of the designed system from the perspective of molecular mechanics combined with energy. This research provides a new idea of nanoscale driving rotation, which has guiding significance for the design and application of related nanodevices in the future.
机译:简单可行的内在驱动机制对于纳米级设备的设计和开发具有重要意义。本文提出了一种纳米系统,可以在相对较高的温度场(如300μk)处实现定向偏振的热渗透旋转。在恒温场的情况下,通过结构的不对称设计可以实现转子的不同区域的原子van der下游(Vdw)电位的差异,这为转子的旋转提供扭矩。我们通过分子动力学(MD)模拟研究了设计系统的旋转和驱动机制,并讨论了碳纳米管,石墨烯基板的手性,石墨烯基材的手性和系统温度的影响。与此同时,本文还从分子力学与能量的角度进行了定性分析了设计系统的可行性。本研究提供了纳米级驱动旋转的新思想,这对未来的相关纳米型设计的设计和应用具有指导意义。

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