论文标题

2D有吸引力的哈伯德模型和BCS-BEC跨界

The 2D attractive Hubbard model and the BCS-BEC crossover

论文作者

Fontenele, Rodrigo A., Costa, Natanael C., Santos, Raimundo R. dos, Paiva, Thereza

论文摘要

在光学晶格中使用超低效率原子进行的最新实验提供了可调且清洁的实现吸引人的Hubbard模型(AHM)。鉴于这一点,可以在弱(Bardeen-Cooper-Schrieffer,BCS)和强(Bose-Einstein Concemation,Bec)耦合之间进行彻底研究几种物理特性。在这里,我们报告了AHM在平方晶格上对AHM进行广泛的量子蒙特卡洛(DQMC)研究,该研究已经计算出几种不同的数量,并且应作为实验的路线图有用。我们已经获得了一个详细的相图,以在乐队填充,$ \ ave {n} $和互动强度($ u $,$ u $)方面获得关键的超导温度,$ t_c $,从中,我们从中确定了一个较宽的区域$ | u |/t \ | u |/t \ 5 \ 5 \ pm 1 $($ t $)($ t $ pm the $ pm the pm the $ \ a} $ 0.最大$ T_C \大约0.16 t $。强调了两个附加的温度尺度,即配对,$ t_p $和退化,$ t_d $:前者设定了配对组的量表(认为与库酸酯中旋转激发的差距密切相关),而后者则将量表设定为显着量子效应的规模。我们的DQMC数据,用于双重占用位点的分布,用于动量分布函数,对于准颗粒重量,在BCS-BEC交叉的两侧都显示出独特的特征,也暗示了Fermi-fermi液体行为之间的基本交叉。

Recent experiments with ultracold fermionic atoms in optical lattices have provided a tuneable and clean realization of the attractive Hubbard model (AHM). In view of this, several physical properties may be thoroughly studied across the crossover between weak (Bardeen-Cooper-Schrieffer, BCS) and strong (Bose-Einstein condensation, BEC) couplings. Here we report on extensive determinant Quantum Monte Carlo (DQMC) studies of the AHM on a square lattice, from which several different quantities have been calculated and should be useful as a roadmap to experiments. We have obtained a detailed phase diagram for the critical superconducting temperature, $T_c$, in terms of the band filling, $\ave{n}$, and interaction strength, $U$, from which we pinpoint a somewhat wide region $|U|/t \approx 5 \pm 1$ ($t$ is the hopping amplitude) and $\ave{n} \approx 0.79 \pm 0.09$ leading to a maximum $T_c \approx 0.16 t$. Two additional temperature scales, namely pairing, $T_p$, and degeneracy, $T_d$, have been highlighted: the former sets the scale for pair formation (believed to be closely related to the scale for the gap of spin excitations in cuprates), while the latter sets the scale for dominant quantum effects. Our DQMC data for the distribution of doubly occupied sites, for the momentum distribution function, and for the quasiparticle weight show distinctive features on both sides of the BCS-BEC crossover, being also suggestive of an underlying crossover between Fermi- and non-Fermi liquid behaviors.

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