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首页> 外文期刊>The Journal of Chemical Physics >The environmental effect on the radial breathing mode of carbon nanotubes. II. Shell model approximation for internally and externally adsorbed fluids
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The environmental effect on the radial breathing mode of carbon nanotubes. II. Shell model approximation for internally and externally adsorbed fluids

机译:环境对碳纳米管径向呼吸模式的影响。二。内部和外部吸附流体的壳模型近似

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We have previously shown that the upshift in the radial breathing mode (RBM) of closed (or infinite) carbon nanotubes in solution is almost entirely due to coupling of the RBM with an adsorbed layer of fluid on the nanotube surface. The upshift can be modeled analytically by considering the adsorbed fluid as an infinitesimally thin shell, which interacts with the nanotube via a continuum Lennard-Jones potential. Here we extend the model to include internally as well as externally adsorbed waterlike molecules, and find that filling the nanotubes leads to an additional upshift of two to six wave numbers. We show that using molecular dynamics, the RBM can be accurately reproduced by replacing the fluid molecules with a mean field harmonic shell potential, greatly reducing simulation times.
机译:我们先前已经表明,溶液中封闭(或无限)碳纳米管在径向呼吸模式(RBM)中的升档几乎完全是由于RBM与纳米管表面上的流体吸附层耦合所致。可以通过将吸附的流体视为无限薄的薄壳来分析模型化,该薄壳通过连续的Lennard-Jones势与纳米管相互作用。在这里,我们将模型扩展到包括内部和外部吸附的水样分子,并且发现填充纳米管会导致2到6个波数的额外上移。我们表明,利用分子动力学,可以通过用平均场谐波壳势代替流体分子来精确地再现RBM,从而大大减少了仿真时间。

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