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首页> 外文期刊>Journal of nanoscience and nanotechnology >Molecular Dynamics Study of Graphene Nanoflake Shuttle Device on Graphene Nanoribbon with Carbon Nanotube Blocks
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Molecular Dynamics Study of Graphene Nanoflake Shuttle Device on Graphene Nanoribbon with Carbon Nanotube Blocks

机译:具有碳纳米管砌块石墨烯纳米石墨烯纳米辊梭装置的分子动力学研究

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Superlubric motions of graphene nanoflakes (GNFs) on graphene have opened up more applications of graphene for micromachines and nanomachines. Here, we investigate the dynamic behavior of a GNF shuttle on a graphene nanoribbon (GNR) with carbon nanotube (CNT) blocks via molecular dynamics simulations. The GNF moves on a GNR superlubrically, and the CNTs as building blocks induce bistable potential wells so that the GNF is stabilized. MD simulation results indicate that when a GNF shuttle approaches the CNTs, a potential well is created by an increase in the attractive van der Waals energy between the GNF and CNTs, and bistability at the local energy minima positions can be achieved near the CNTs. In order for the GNF shuttle to escape the local energy minima positions, a high external force must be applied to overcome the potential energy barrier. However, after the GNF shuttle escapes from one of the bistable positions, only a low external force is required to stabilize the GNF shuttle. This work explicitly demonstrates that a GNF-GNR/CNT system could be applied to alternative nonvolatile memory and high-speed mass storage by using GNR-CNT arrays.
机译:石墨烯纳米薄膜(GNFS)的超级恒温运动已经打开了Graphene用于微鼠和纳米胺的更多应用。在这里,我们通过分子动力学模拟研究了与碳纳米管(CNT)块的石墨烯纳米(GNR)上的GNF班车的动态行为。 GNF在GNR上移动超高恒压,并且CNT作为构建块诱导双稳态电位孔,使得GNF稳定。 MD仿真结果表明,当GNF梭接近CNT时,通过GNF和CNT的有吸引力的范德华能量的增加产生潜在的井,并且可以在CNT附近实现局部能量最小位置的双稳性。为了使GNF航天飞机逃避局部能量最小位置,必须应用高外力以克服潜在的能量屏障。然而,在GNF梭子从一个双稳态位置逸出之后,只需要低外力来稳定GNF梭子。这项工作明确说明了通过使用GNR-CNT阵列将GNF-GNR / CNT系统应用于替代的非易失性存储器和高速容量存储器。

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