Atanasova Hristiana, Erpenbeck André, Gull Emanuel, Lev Yevgeny Bar, Cohen Guy
School of Chemistry, Tel Aviv University, Tel Aviv 6997801, Israel.
Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, USA.
Phys Rev Lett. 2024 Apr 19;132(16):166301. doi: 10.1103/PhysRevLett.132.166301.
We study bulk particle transport in a Fermi-Hubbard model on an infinite-dimensional Bethe lattice, driven by a constant electric field. Previous numerical studies showed that one dimensional analogs of this system exhibit a breakdown of diffusion due to Stark many-body localization at least up to time that scales exponentially with the system size. Here, we consider systems initially in a spin density wave state using a combination of numerically exact and approximate techniques. We show that for sufficiently weak electric fields, the wave's momentum component decays exponentially with time in a way consistent with normal diffusion. By studying different wavelengths, we extract the dynamical exponent and the generalized diffusion coefficient at each field strength. Interestingly, we find a nonmonotonic dependence of the dynamical exponent on the electric field. As the field increases toward a critical value proportional to the Hubbard interaction strength, transport slows down, becoming subdiffusive. At large interaction strengths, however, transport speeds up again with increasing field, exhibiting superdiffusive characteristics when the electric field is comparable to the interaction strength. Eventually, at the large field limit, localization occurs and the current through the system is suppressed.
我们研究了在无限维贝塞晶格上由恒定电场驱动的费米 - 哈伯德模型中的体粒子输运。先前的数值研究表明,该系统的一维类似物由于斯塔克多体局域化至少在随系统尺寸呈指数增长的时间内表现出扩散的崩溃。在这里,我们使用数值精确和近似技术相结合的方法来考虑最初处于自旋密度波状态的系统。我们表明,对于足够弱的电场,波的动量分量随时间呈指数衰减,其方式与正常扩散一致。通过研究不同波长,我们在每个场强下提取了动力学指数和广义扩散系数。有趣的是,我们发现动力学指数对电场有非单调依赖性。随着场强朝着与哈伯德相互作用强度成比例的临界值增加,输运减慢,变为亚扩散。然而,在大相互作用强度下,随着场强增加输运再次加快,当电场与相互作用强度相当时表现出超扩散特性。最终,在大场极限下,发生局域化并且通过系统的电流被抑制。