论文标题
在狭窄的碳纳米管中进行异常筛选
Anomalous screening in narrow-gap carbon nanotubes
论文作者
论文摘要
库仑相互作用的筛选控制碳纳米管中的多体物理,因为它调整了作用于电荷载体并将电子孔对的力的范围和强度结合到激子中。在掺杂的管中,有效的库仑相互作用驱动了Luttinger液体和Wigner Crystal之间的竞争,而在未含量的窄间隙管中,它决定了在低温下观察到的相关绝缘子的Mott或兴奋性性质。在这里,通过计算第一原理中选定的窄差和零间隙管的介电函数,我们表明,筛选的标准有效质量模型系统地低估了长波长处的相互作用强度,因此缺少低能量激子的结合。原因是该模型批判性地缺乏基于石墨烯理论的整个管子的三维拓扑。由于AB Inito计算仅限于小管,因此我们基于Bloch状态的平面波扩展和精确的截短的库仑截止技术,开发了两个波段模型的介电函数。我们证明,我们的计算廉价方法提供了正确筛选任何大小和手性的狭窄差距。一个惊人的结果是,即使在无间隙管中,筛选的相互作用也保持远距离,这是在弯曲管表面上移动的电子产生的微观局部场的效果。作为一种应用,我们表明在与量子运输实验相关的距离上感觉到的有效电子电子力是超级库仑。
The screening of Coulomb interaction controls many-body physics in carbon nanotubes, as it tunes the range and strength of the force that acts on charge carriers and binds electron-hole pairs into excitons. In doped tubes, the effective Coulomb interaction drives the competition between Luttinger liquid and Wigner crystal, whereas in undoped narrow-gap tubes it dictates the Mott or excitonic nature of the correlated insulator observed at low temperature. Here, by computing the dielectric function of selected narrow- and zero-gap tubes from first principles, we show that the standard effective-mass model of screening systematically underestimates the interaction strength at long wavelength, hence missing the binding of low-energy excitons. The reason is that the model critically lacks the full three-dimensional topology of the tube, being adapted from graphene theory. As ab inito calculations are limited to small tubes, we develop a two-band model dielectric function based on the plane-wave expansion of Bloch states and the exact truncated Coulomb cutoff technique. We demonstrate that our -- computationally cheap -- approach provides the correct screening for narrow-gap tubes of any size and chirality. A striking result is that the screened interaction remains long-ranged even in gapless tubes, as an effect of the microscopic local fields generated by the electrons moving on the curved tube surface. As an application, we show that the effective electron-electron force that is felt at distances relevant to quantum transport experiments is super Coulombic.