论文标题
无序,准二维费米式系统的非马克维亚摘要
Non-Markovian dephasing of disordered, quasi-one-dimensional fermion systems
论文作者
论文摘要
作为从千古式,多体偏置的相位过渡的潜在窗口,我们研究了由于扩散的非马克维亚噪声浴而导致的弱无序的准中二维费米式系统。这种浴是通过短程相互作用介导的非弹性散射来自我生成的。我们通过浴耦合中的二阶扰动地计算弱定位的范围。但是,该扩展在长时间破裂,并且不会通过包括平均场衰减率来稳定,这表明自洽天生近似的故障。我们还考虑了一条多通道量子线,其中短距离,自旋交换相互作用与筛选的库仑相互作用共存。我们计算出脱粒率,精确处理短距离相互作用和库仑相互作用。后者提供了一种物理红外正规化,可长时间稳定扰动理论,从而为由于扩散噪声而对准-1D的第一个控制计算。在扩散浴耦合中的一阶时,我们发现了脱落速率的提高,但是在二阶中,我们找到了贡献的贡献。我们的结果与通过自洽计算获得的结果不同,并且在两种不同的情况下相关。首先,在搜索在沿阶段中多体定位的前体时。其次,我们的结果提供了一种机制,可以在旋转SU(2) - 对称量子线(超出AltShuler-Aronov-khmelnitsky结果)下在低温下增强去脱粒的机制。由于三胞胎通道相互作用强度的扩增,可以增强,并提供了一种额外的机制,该机制可能有助于实验观察到的衰减时间的低温饱和度。
As a potential window on transitions out of the ergodic, many-body-delocalized phase, we study the dephasing of weakly disordered, quasi-one-dimensional fermion systems due to a diffusive, non-Markovian noise bath. Such a bath is self-generated by the fermions, via inelastic scattering mediated by short-ranged interactions. We calculate the dephasing of weak localization perturbatively through second order in the bath coupling. However, the expansion breaks down at long times, and is not stabilized by including a mean-field decay rate, signaling a failure of the self-consistent Born approximation. We also consider a many-channel quantum wire where short-ranged, spin-exchange interactions coexist with screened Coulomb interactions. We calculate the dephasing rate, treating the short-ranged interactions perturbatively and the Coulomb interaction exactly. The latter provides a physical infrared regularization that stabilizes perturbation theory at long times, giving the first controlled calculation of quasi-1D dephasing due to diffusive noise. At first order in the diffusive bath coupling, we find an enhancement of the dephasing rate, but at second order we find a rephasing contribution. Our results differ qualitatively from those obtained via self-consistent calculations and are relevant in two different contexts. First, in the search for precursors to many-body localization in the ergodic phase. Second, our results provide a mechanism for the enhancement of dephasing at low temperatures in spin SU(2)-symmetric quantum wires, beyond the Altshuler-Aronov-Khmelnitsky result. The enhancement is possible due to the amplification of the triplet-channel interaction strength, and provides an additional mechanism that could contribute to the experimentally observed low-temperature saturation of the dephasing time.