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Velocity plateaus and jumps in carbon nanotube sliding

机译:速度平稳并在碳纳米管滑动中跳跃

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The friction between concentric carbon nanotubes sliding one inside the other has been widely studied and simulated, but not so far using external force as the driving variable. Our molecular dynamics (MD) simulations show that as the pulling force grows, the sliding velocity increases by jumps and plateaus rather than continuously as expected. Dramatic friction peaks [similar to that recently noted by P. Tangney, M.L. Cohen, S.G. Louie, Phys. Rev. Lett. 97 (2006) 195901] which develop around some preferential sliding velocities, are at the origin of this phenomenon. The (stable) rising edge of the peak produces a velocity plateau; the (unstable) dropping edge produces a jump to the nearest stable branch. The outcome is reminiscent of conduction in ionized gases, the plateau corresponding to a current stabilization against voltage variations, the jump corresponding to a discharge or breakdown.
机译:相互滑动的同心碳纳米管之间的摩擦已得到广泛研究和模拟,但到目前为止还没有使用外力作为驱动变量。我们的分子动力学(MD)模拟表明,随着拉力的增加,滑动速度会以跳跃和平稳的方式增加,而不是连续地增加。剧烈的摩擦峰[类似于P. Tangney,M.L.科恩(Cohen),路易(S.G. Louie),物理学牧师97(2006)195901]是围绕这种优先滑动速度发展的,是这种现象的起源。峰值的(稳定)上升沿产生速度平稳段; (不稳定)下降沿会跳转到最近的稳定分支。结果使人联想到电离气体中的传导,平稳期对应于针对电压变化的电流稳定,跃迁对应于放电或击穿。

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