论文标题
方形哈伯德模型中的电荷波动,流体力学和运输
Charge fluctuations, hydrodynamics and transport in the square-lattice Hubbard model
论文作者
论文摘要
最近的实验结果表明,特定的流体动力学理论描述了方形晶格哈伯德模型中长波长的电荷波动。由于连续性方程,电荷和电流的相关函数直接连接:有效流体动力模型的参数因此确定了光导率。在这里,我们在哈伯德模型的全部参数中研究了提出的流体力学理论的有效性。在非相互作用的情况下,没有有效的流体动力学,电荷波动呈现出丰富的非宇宙行为。在弱耦合时,光导率与流体动力学理论一致:在低频下,一个人观察到洛伦兹形的drude峰,但是高频渐近性一定是不同的。两个流体动力模型参数乘积的高温极限也与数值数据一致。在强耦合时,我们发现所提出的流体动力定律的概括与我们的量子蒙特卡洛以及有限的温度lanczos一致。最重要的是,在弱和强耦合方案中,水力动力学参数以及直流电阻率的温度依赖性非常相似。
Recent experimental results suggest that a particular hydrodynamic theory describes charge fluctuations at long wavelengths in the square-lattice Hubbard model. Due to the continuity equation, the correlation functions for the charge and the current are directly connected: the parameters of the effective hydrodynamic model thus determine the optical conductivity. Here we investigate the validity of the proposed hydrodynamic theory in the full range of parameters of the Hubbard model. In the non-interacting case, there is no effective hydrodynamics, and the charge fluctuations present a rich variety of non-universal behaviors. At weak coupling, the optical conductivity is consistent with the hydrodynamic theory: at low frequency one observes a Lorentzian-shaped Drude peak, but the high-frequency asymptotics is necessarily different; the high-temperature limit for the product of the two hydrodynamic model parameters is also in agreement with numerical data. At strong coupling, we find that a generalization of the proposed hydrodynamic law is consistent with our quantum Monte Carlo, as well as the finite-temperature Lanczos results from literature. Most importantly, the temperature dependence of the hydrodynamic parameters as well as the dc resistivity are found to be very similar in the weak and the strong-coupling regimes.