一维斥力哈伯德模型的精确结果

Jia-Jia Luo, Han Pu, Xi-Wen Guan
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引用次数: 0

摘要

我们提出了具有斥力相互作用的一维(1D)哈伯德模型基本性质的分析结果。 该模型在任意外场下的新结果包括: I)利用哈伯德模型贝特安萨特方程的精确解,我们首先严格计算了无间隙自旋和电荷激发,展示了分数化自旋子和全子的奇异特征。然后,我们研究了任意驱动场下自旋弦和 $k-\Lambda$ 弦束缚态的间隙激发,显示了自旋磁子和电荷 $\eta$ 对激发的微妙差异。III)重要的是,我们给出了任意填充 和相互作用强度下量子临界点的一般缩放函数。这些可以直接应用于其他可积分模型。 IV) 基于分数激元和缩放定律,在共形场理论的帮助下,通过两点相关函数的渐近,阐明了只有电荷传播模式的自旋相干鲁丁格液体(SILL)。最后,为了更深入地了解莫特绝缘体和相互作用驱动临界,我们进一步研究了双占位,并提出了与之相关的接触和接触感性,从而提出了基于量子临界的绝热冷却方案。在这种情况下,我们建立了任意外部和内部势驱动量子相变之间的一般关系,提供了对量子临界的全面理解。我们的方法为量子可集成性提供了丰富的视角,并为未来有晶格和无晶格的相互作用电子和超冷原子实验提供了有前途的指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exact results of the one-dimensional repulsive Hubbard model.

We present analytical results of the fundamental properties of the one-dimensional (1D) Hubbard model with a repulsive interaction. The new model results with arbitrary external fields include: (I) using the exact solutions of the Bethe ansatz equations of the Hubbard model, we first rigorously calculate the gapless spin and charge excitations, exhibiting exotic features of fractionalized spinons and holons. We then investigate the gapped excitations in terms of the spin string and thek-Λstring bound states at arbitrary driving fields, showing subtle differences in spin magnons and chargeη-pair excitations. (II) For a high-density and high spin magnetization region, i.e. near the quadruple critical point, we further analytically obtain the thermodynamic properties, dimensionless ratios and scaling functions near quantum phase transitions. (III) Importantly, we give the general scaling functions at quantum criticality for arbitrary filling and interaction strength. These can directly apply to other integrable models. (IV) Based on the fractional excitations and the scaling laws, the spin-incoherent Luttinger liquid (SILL) with only the charge propagation mode is elucidated by the asymptotic of the two-point correlation functions with the help of conformal field theory. We also, for the first time, obtain the analytical results of the thermodynamics for the SILL. (V) Finally, to capture deeper insights into the Mott insulator and interaction-driven criticality, we further study the double occupancy and propose its associated contact and contact susceptibilities, through which an adiabatic cooling scheme based upon quantum criticality is proposed. In this scenario, we build up general relations among arbitrary external- and internal-potential-driven quantum phase transitions, providing a comprehensive understanding of quantum criticality. Our methods offer rich perspectives of quantum integrability and offer promising guidance for future experiments with interacting electrons and ultracold atoms, both with and without a lattice.

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