English

Many-body quantum dynamics by the reduced density matrix based on the time-dependent density functional theory

Mesoscale and Nanoscale Physics 2019-09-04 v6

Abstract

We evaluate the density matrix of an arbitrary quantum mechanical system in terms of the quantities pertinent to the solution of the time-dependent density functional theory (TDDFT) problem. Our theory utilizes the adiabatic connection perturbation method of G\"{o}rling and Levy, from which the expansion of the many-body density matrix in powers of the coupling constant λ\lambda naturally arises. We then find the reduced density matrix ρλ(r,r,t)\rho_\lambda({\bf r},{\bf r}',t), which, by construction, has the λ\lambda-independent diagonal elements ρλ(r,r,t)=n(r,t)\rho_\lambda({\bf r},{\bf r},t)=n({\bf r},t), n(r,t)n({\bf r},t) being the particle density. The off-diagonal elements of ρλ(r,r,t)\rho_\lambda({\bf r},{\bf r}',t) contribute importantly to the processes, which cannot be treated via the density, directly or by the use of the known TDDFT functionals. Of those, we consider the momentum-resolved photoemission, doing this to the first order in λ\lambda, i.e., on the level of the exact exchange theory. In illustrative calculations of photoemission from the quasi-2D electron gas and isolated atoms, we find quantitatively strong and conceptually far-reaching differences with the independent-particle Fermi's golden rule formula.

Keywords

Cite

@article{arxiv.1809.04058,
  title  = {Many-body quantum dynamics by the reduced density matrix based on the time-dependent density functional theory},
  author = {Vladimir U. Nazarov},
  journal= {arXiv preprint arXiv:1809.04058},
  year   = {2019}
}

Comments

13 pages, 4 figures

R2 v1 2026-06-23T04:02:50.327Z