English

Exact factorization-based density functional theory of electrons and nuclei

Chemical Physics 2016-11-08 v2

Abstract

The ground state energy of a system of electrons and nuclei is proven to be a variational functional of the conditional electronic density nR(r)n_R(\mathbf{r}), the nuclear wavefunction χ(R)\chi(R) and an induced vector potential Aμ(R)A_{\mu}(R) and quantum geometric tensor Tμν(R)\mathcal{T}_{\mu\nu}(R) derived from the conditional electronic wavefunction ΦR(r)\Phi_R(r) over nuclear configuration space, where r=r1,r2,r=\mathbf{r}_1,\mathbf{r}_2,\ldots are electronic coordinates and R=R1,R2,R=\mathbf{R}_1,\mathbf{R}_2,\ldots are nuclear coordinates. The ground state (nR,χ,Aμ,Tμν)(n_R,\chi,A_{\mu},\mathcal{T}_{\mu\nu}) can be calculated by solving self-consistently (i) conditional Kohn-Sham equations containing an effective potential vs(r)v_{\rm s}(\mathbf{r}) that depends parametrically on RR, (ii) the Schr\"odinger equation for χ(R)\chi(R) and (iii) Euler-Lagrange equations that determine Tμν\mathcal{T}_{\mu\nu}. The theory is applied to the EeE\otimes e Jahn-Teller model.

Keywords

Cite

@article{arxiv.1606.08424,
  title  = {Exact factorization-based density functional theory of electrons and nuclei},
  author = {Ryan Requist and E. K. U. Gross},
  journal= {arXiv preprint arXiv:1606.08424},
  year   = {2016}
}
R2 v1 2026-06-22T14:35:36.512Z