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Time-dependent Mott transition in the periodic Anderson model with nonlocal hybridization

机译:具有非局部杂交的周期Anderson模型中的时间相关Mott跃迁

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The time-dependentMott transition in a periodic Anderson model with off-site, nearest-neighbor hybridization is studied within the framework of nonequilibrium self-energy functional theory. Using the two-site dynamical-impurity approximation, we compute the real-time dynamics of the optimal variational parameter and of different observables initiated by sudden quenches of the Hubbard-U and identify the critical interaction. The time-dependent transition is orbital selective, i.e., in the final state, reached in the long-time limit after the quench to the critical interaction, the Mott gap opens in the spectral function of the localized orbitals only. We discuss the dependence of the critical interaction and of the final-state effective temperature on the hybridization strength and point out the various similarities between the nonequilibrium and the equilibrium Mott transition. It is shown that these can also be smoothly connected to each other by increasing the duration of a U-ramp from a sudden quench to a quasi-static process. The physics found for the model with off-site hybridization is compared with the dynamical Mott transition in the single-orbital Hubbard model and with the dynamical crossover found for the real-time dynamics of the conventional Anderson lattice with on-site hybridization.
机译:在非平衡自能函数理论的框架下,研究了具有异位,最近邻杂交的周期性Anderson模型中随时间变化的Mott跃迁。使用两点动力杂质逼近,我们计算了最佳变化参数和由Hubbard-U突然猝灭引发的不同可观测值的实时动力学,并确定了关键相互作用。与时间有关的过渡是轨道选择性的,即在最终状态下,在淬灭至临界相互作用后的长时间极限内达到,Mott间隙仅在局部轨道的光谱函数中打开。我们讨论了临界相互作用和最终状态有效温度对杂交强度的依赖性,并指出了非平衡与平衡莫特跃迁之间的各种相似性。结果表明,通过增加从突然淬火到准静态过程的U形斜坡的持续时间,它们也可以平滑地相互连接。将针对具有非现场杂交模型的物理特性与单轨道Hubbard模型中的动力学Mott跃迁进行比较,并与针对具有现场杂交的常规Anderson晶格的实时动力学的动力学交叉进行比较。

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