论文标题
掺杂的二维Hubbard模型中自旋和电荷顺序的温度依赖性
Temperature Dependence of Spin and Charge Orders in the Doped Two-Dimensional Hubbard Model
论文作者
论文摘要
在许多相关的电子材料(例如高温超导体)中观察到竞争和交织在一起的顺序,包括自旋和电荷的不均匀模式。为了引入约束辅助辅助场量子蒙特卡洛(AFQMC)方法的新开发,我们研究了二维Hubbard模型中热和量子波动之间的相互作用。我们获得了旋转和电荷相关性的演变的准确,系统的表征,它是温度$ t $的函数,以及它如何连接到基础状态,在三个代表性掺杂水平$δ= 1/5 $,$ 1/8 $和$ 1/10 $。我们发现随着$ t $的降低,越来越多的短期相称的抗铁磁相关性。随着相关长度的增长足够大,会出现调制的旋转密度波(SDW)。在$δ= 1/5 $时,SDW饱和,并且短距离为$ t \ rightarrow 0 $。相反,在$δ= 1/8 $和$ 1/10 $的情况下,这将演变为地面条纹阶段。我们研究自旋和电荷顺序之间的关系,发现电荷顺序的形成似乎是由自旋顺序驱动的。我们在下面确定了有限温度的相位过渡,并在该过渡中设置了收费排序,并讨论了我们结果对这种过渡性质的含义。
Competing and intertwined orders including inhomogeneous patterns of spin and charge are observed in many correlated electron materials, such as high-temperature superconductors. Introducing a new development of the constrained-path auxiliary-field quantum Monte Carlo (AFQMC) method, we study the interplay between thermal and quantum fluctuations in the two-dimensional Hubbard model. We obtain an accurate and systematic characterization of the evolution of the spin and charge correlations as a function of temperature $T$ and how it connects to the ground state, at three representative doping levels $δ= 1/5$, $1/8$, and $1/10$. We find increasing short-range commensurate antiferromagnetic correlations as $T$ is lowered. As the correlation length grows sufficiently large, a modulated spin-density-wave (SDW) appears. At $δ= 1/5$, the SDW saturates and remains short-ranged as $T \rightarrow 0$. In contrast, at $δ= 1/8$ and $1/10$ this evolves into a ground-state stripe phase. We study the relation between spin and charge orders and find that formation of charge order appears to be driven by that of the spin order. We identify a finite-temperature phase transition below which charge ordering sets in and discuss the implications of our results for the nature of this transition.