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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Effective low-energy theory of superconductivity in carbon nanotube ropes
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Effective low-energy theory of superconductivity in carbon nanotube ropes

机译:碳纳米管绳索中有效的低能超导理论

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We derive and analyze the low-energy theory of superconductivity in carbon nanotube ropes. A rope is modelled as an array of metallic nanotubes, taking into account phonon-mediated as well as Coulomb interactions, and arbitrary Cooper pair hopping amplitudes (Josephson couplings) between different tubes. We use a systematic cumulant expansion to construct the Ginzburg-Landau action including quantum fluctuations. The regime of validity is carefully established, and the effect of phase slips is assessed. Quantum phase slips are shown to cause a depression of the critical temperature T_c below the mean-field value, and a temperature-dependent resistance below T_c. We compare our theoretical results to recent experimental data of Kasumov et al. [Phys. Rev. B 68, 214521 (2003)] for the sub-T_c resistance, and find good agreement with only one free fit parameter. Ropes of nanotubes therefore represent superconductors in the one-dimensional few-channel limit.
机译:我们推导并分析了碳纳米管绳索中超能的低能理论。考虑到声子介导的以及库仑相互作用以及不同管之间任意的库珀对跳跃幅度(约瑟夫森耦合),将绳索建模为金属纳米管的阵列。我们使用系统的累积量来构造包括量子涨落的金茨堡-朗道动作。仔细确定了有效性的制度,并评估了相移的影响。量子相移显示出导致临界温度T_c低于平均场值,而温度依赖性电阻低于T_c。我们将我们的理论结果与Kasumov等人的最新实验数据进行比较。 [物理Rev. B 68,214521(2003)],针对次T_c阻力,并仅使用一个自由拟合参数找到良好的一致性。因此,纳米管的绳索代表在一维数通道极限内的超导体。

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