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Electron Dynamics with the Time-Dependent Density Matrix Renormalization Group
arXiv
Authors: Alberto Baiardi
Year
2020
Paper ID
20215
Status
Preprint
Abstract Read
~2 min
Abstract Words
108
Citations
N/A
Abstract
In this work, we simulate the electron dynamics in molecular systems with the Time-Dependent Density Matrix Renormalization Group (TD-DMRG) algorithm. We leverage the generality of the so-called tangent-space TD-DMRG formulation and design a computational framework in which the dynamics is driven by the exact non-relativistic electronic Hamiltonian. We show that, by parametrizing the wave function as a matrix product state, we can accurately simulate the dynamics of systems including up to 20 electrons and 32 orbitals. We apply the TD-DMRG algorithm to three problems that are hardly targeted by time-independent methods: the calculation of molecular (hyper)polarizabilities, the simulation of electronic absorption spectra, and the study of ultrafast ionization dynamics.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- In this work, we simulate the electron dynamics in molecular systems with the Time-Dependent Density Matrix Renormalization Group (TD-DMRG) algorithm.
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