Dynamic Mode Decomposition for Extrapolating Non-equilibrium Green's Functions Dynamics
arXiv:2211.05868 · doi:10.1103/PhysRevB.107.075107
Abstract
The HF-GKBA offers an approximate numerical procedure for propagating the two-time non-equilibrium Green's function(NEGF). Here we compare the HF-GKBA to exact results for a variety of systems with long and short-range interactions, different two-body interaction strengths and various non-equilibrium preparations. We find excellent agreement between the HF-GKBA and exact time evolution in models when more realistic long-range exponentially decaying interactions are considered. This agreement persists for long times and for intermediate to strong interaction strengths. In large systems, HF-GKBA becomes prohibitively expensive for long-time evolutions. For this reason, look at the use of dynamical mode decomposition(DMD) to reconstruct long-time NEGF trajectories from a sample of the initial trajectory. Using no more than 16\% of the total time evolution we reconstruct the total trajectory with high fidelity. Our results show the potential for DMD to be used in conjunction with HF-GKBA to calculate long time trajectories in large-scale systems.
References in corpus (6)
- The GW compendium: A practical guide to theoretical photoemission spectroscopy
- The G1--G2 Scheme: Dramatic Acceleration of Nonequilibrium Green Functions Simulations Within the Hartree--Fock-GKBA
- Real-time GW: Toward an ab initio description of the ultrafast carrier and exciton dynamics in two-dimensional materials
- Self-consistency in formalism leading to quasiparticle-quasiparticle couplings
- The dynamically screened ladder approximation: Simultaneous treatment of strong electronic correlations and dynamical screening out of equilibrium
- Time-linear scaling NEGF methods for real-time simulations of interacting electrons and bosons. II. Dynamics of polarons and doublons
Cited by in corpus (5)
- Minimal pole representation and analytic continuation of matrix-valued correlation functions
- Forecasting long-time dynamics in quantum many-body systems by dynamic mode decomposition
- Chirped amplitude mode in photo-excited superconductors
- Stochastic Real-Time Second-Order Green's Function Theory for Neutral Excitations in Molecules and Nanostructures
- Compact representation and long-time extrapolation of real-time data for quantum systems using the ESPRIT algorithm