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首页> 外文期刊>Physical Review, B. Condensed Matter >Exact zero-temperature correlation functions for two-leg Hubbard ladders and carbon nanotubes - art. no. 155112
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Exact zero-temperature correlation functions for two-leg Hubbard ladders and carbon nanotubes - art. no. 155112

机译:两腿哈伯梯子和碳纳米管的精确零温度相关函数-艺术。没有。 155112

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摘要

Motivated by recent work of Lin, Balents, and Fisher [Phys. Rev. B 58, 1794 (1998)], we compute correlation functions at zero temperature for weakly coupled two-leg Hubbard ladders and (N,N) armchair carbon nanotubes. In this paper it was argued that such systems renormalize towards the SO(8) Gross-Neveu model, an integrable theory. We exploit this integrability to perform the computation at the SO(8) invariant point. Any terms breaking the SO(8) symmetry can be treated systematically in perturbation theory, leading to a model with the same qualitative features as the integrable theory. Using said correlators, we determine the optical conductivity, the single-particle spectral function, and the I-V curve for tunneling into the system from in external metallic lead. The frequency, omega, dependent optical conductivity is determined exactly for omega < 3m (m being the fermion particle mass in the SO(8) Gross-Neveu model). It is characterized by a sharp "exciton" peak at = root 3m, followed by the onset of the particle-hole continuum beginning at omega =2m. Interactions modify this onset to sigma(omega + 2m) similar to omega (1/2) and not the omega (-1/2) one would expect from the van Hove singularity in the density of states. Similarly, we obtain the exact single-particle spectral function for energies less than 3 m, The latter possesses a delta function peak arising from single-particle excitations, together with a two-particle continuum for omega greater than or equal to 2m. The final quantity we compute is the tunneling I-V curve to lowest nonvanishing order in the tunneling matrix elements. For this quantity, we present exact results for voltages, V< ( 1 + 3) m. The resulting differential conductance is marked by a finite jump at omega = 2m, the energy of the onset of tunneling into the continuum of two-particle states. Through integrability, we are able to characterize this jump exactly. All calculations are done through form-factor expansions of correlation functions. These give exact closed form expressions for spectral functions because the SO(8) Gross-Neveu model is massive: each term in the expansion has an energy threshold below which it does not contribute. Thus, we obtain exact results below certain thresholds by computing a finite number of terms in this series. Previous to this paper, the only computed form factor of SO(8) Gross-Neveu was the two-particle form factor of an SO(8) current with two fundamental fem-dons. In this paper we compute the set of all one- and two-particle form factors for all relevant fields, the currents as well as the kinks and fermions. [References: 47]
机译:受到Lin,Balents和Fisher的最新工作的激励[Phys。 Rev. B 58,1794(1998)],我们为零耦合的两腿Hubbard梯子和(N,N)扶手椅碳纳米管计算了零温度下的相关函数。在本文中,有人争论说,这样的系统对SO(8)Gross-Neveu模型(可积理论)进行了重新规范化。我们利用这种可积性在SO(8)不变点进行计算。任何破坏SO(8)对称性的项都可以在扰动理论中得到系统地处理,从而得到具有与可积性理论相同的定性特征的模型。使用所述相关器,我们可以确定从外部金属铅隧穿进入系统的光导率,单粒子光谱函数和I-V曲线。精确确定欧米伽<3m(m是SO(8)Gross-Neveu模型中的费米子粒子质量)的频率(取决于欧米伽)。它的特征是在ω=根3m处出现一个尖峰的“激子”峰,随后是在ω= 2m处开始出现的颗粒-孔连续体。相互作用将这种发作修改为类似于ω(1/2)的sigma(ω+ 2m),而不是从状态密度的van Hove奇异性所期望的ω(-1/2)。同样,我们获得了小于3 m的能量的精确单粒子光谱函数。后者具有源自单粒子激发的三角函数峰,以及两个大于或等于2m的ω连续粒子。我们计算的最终量是在隧穿矩阵元素中达到最低不消失阶的隧穿I-V曲线。对于这个数量,我们给出了电压V <(1 + 3)m的精确结果。由此产生的差分电导的特征是在ω= 2m处发生有限跳变,这是隧穿开始进入两个粒子状态连续体的能量。通过可集成性,我们能够准确地描述这种跳跃。所有计算都是通过相关函数的形状因子展开来完成的。由于SO(8)Gross-Neveu模型非常庞大,因此这些函数为频谱函数提供了精确的封闭形式表达式:扩展项中的每个项都有一个能量阈值,在该阈值以下它不起作用。因此,通过计算该系列中有限数量的项,我们可以获得低于某些阈值的精确结果。在此之前,SO(8)Gross-Neveu的唯一计算形状因子是具有两个基本fem-dons的SO(8)电流的两粒子形状因子。在本文中,我们计算了所有相关场,电流以及扭结和费米子的所有一粒子和二粒子形状因子的集合。 [参考:47]

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