论文标题

相弦对两腿哈伯德阶梯中单孔动力学的影响

Effect of phase string on single-hole dynamics in the two-leg Hubbard ladder

论文作者

Shinjo, Kazuya, Sota, Shigetoshi, Tohyama, Takami

论文摘要

掺杂的Mott绝缘子中的光学测量发现在化学掺杂和光接头时,在中红外(MIR)发现了光谱重量的出现。 mir重量可能与旋转的弦型激发有关,这是由掺杂的孔引起的,该孔会产生相对于其sublattice的折叠式旋转。有两种类型的字符串效果:一种是$ s^z $ string,可以通过量子自旋翻转可以修复,另一种是旋转翻转无法恢复的相弦。我们研究了$ s^{z} $和相字符串对mir权重的影响。通过使用时间依赖性的兰氏兰科斯和密度 - 矩阵恢复量级化组,在强耦合方案中计算单孔Hubbard模型的光电导率以及$ t $ - $ J $模型,与$ s^$ s的$ s^$ scr.相比,相位串对$ S^$ s^$ scrim a imir aftermim a i mir strips产生了至关重要的影响。我们的发现表明,相互的Chern-Simons仪表场作用在自旋和电荷自由度之间(这是相字符串的起源)对于获得miR权重很重要。相反,如果我们删除了该规格场,则掺杂的孔不会捡起任何相位。结果,出现并伴有局部自旋失真的旋转棕榈,并在单粒子光谱功能中形成具有余弦的能量分散体的准粒子。此外,我们建议进行浮动工程,以检查冷原子中的相串效应。

Optical measurements in doped Mott insulators have discovered the emergence of spectral weights at mid-infrared (MIR) upon chemical doping and photodoping. MIR weights may have a relation to string-type excitation of spins, which is induced by a doped hole generating misarranged spins with respect to their sublattice. There are two types of string effects: one is an $S^z$ string that is repairable by quantum spin flips and the other is a phase string irreparable by the spin flips. We investigate the effect of $S^{z}$ and phase strings on MIR weights. Calculating the optical conductivity of the single-hole Hubbard model in the strong-coupling regime and the $t$-$J$ model on two-leg ladders by using time-dependent Lanczos and density-matrix renormalization group, we find that phase strings make a crucial effect on the emergence of MIR weights as compared with $S^{z}$ strings. Our findings indicate that a mutual Chern-Simons gauge field acting between spin and charge degrees of freedom, which is the origin of phase strings, is significant for obtaining MIR weights. Conversely, if we remove this gauge field, no phase is picked up by a doped hole. As a result, a spin-polaron accompanied by a local spin distortion emerges and a quasiparticle with a cosine-like energy dispersion is formed in single-particle spectral function. Furthermore, we suggest a Floquet engineering to examine the phase-string effect in cold atoms.

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