Adiabatic Green's function technique and the transient behavior in time-dependent fermion-boson coupled models
arXiv:1601.04872 · doi:10.1103/PhysRevB.94.075113
Abstract
The Lang-Firsov Hamiltonian, a well-known solvable model of interacting fermion-boson system with sideband features in the fermion spectral weight, is generalized to have the time-dependent fermion-boson coupling constant. We show how to derive the two-time Green's function for the time-dependent problem in the adiabatic limit, defined as the slow temporal variation of the coupling over the characteristic oscillator period. The idea we use in deriving the Green's function is akin to the use of instantaneous basis states in solving the adiabatic evolution problem in quantum mechanics. With such "adiabatic Green's function" at hand we analyze the transient behavior of the spectral weight as the coupling is gradually tuned to zero. Time-dependent generalization of a related model, the spin-boson Hamiltonian, is analyzed in the same way. In both cases the sidebands arising from the fermion-boson coupling can be seen to gradually lose their spectral weights over time. Connections of our solution to the two-dimensional Dirac electrons coupled to quantized photons are discussed.
12 pages, 4 figures
References in corpus (12)
- Photovoltaic Hall effect in graphene
- Molecular Transport Junctions: Vibrational Effects
- Selective scattering between Floquet-Bloch and Volkov states in a topological insulator
- Theoretical description of time-resolved photoemission spectroscopy: application to pump-probe experiments
- Dissipative Floquet Topological Systems
- Gigantic surface life-time of an intrinsic topological insulator revealed via time-resolved (pump-probe) ARPES
- Inelastic tunneling effects on noise properties of molecular junctions
- Charge transfer statistics of a molecular quantum dot with strong electron-phonon interaction
- Transient dynamics and waiting time distribution of molecular junctions in the polaronic regime
- Non-Canonical Statistics of a Spin-Boson Model: Theory and Exact Monte-Carlo Simulations
- Long transient dynamics in the Anderson-Holstein model out of equilibrium
- Local density of states on a vibrational quantum dot out of equilibrium