Accurate computation of the electron-phonon interaction contribution to the total energy

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Hauptverfasser: Paul, Shilpa, Gururajan, Mogadalai Pandurangan, Bhattacharya, Amrita, Prasanna, Tiramkudlu R. S.
Format: Preprint
Veröffentlicht: 2026
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author Paul, Shilpa
Gururajan, Mogadalai Pandurangan
Bhattacharya, Amrita
Prasanna, Tiramkudlu R. S.
author_facet Paul, Shilpa
Gururajan, Mogadalai Pandurangan
Bhattacharya, Amrita
Prasanna, Tiramkudlu R. S.
contents The standard Hamiltonian of a coupled electron-phonon system is based on second-order perturbation theory. The EPI contribution in the standard Hamiltonian consists of two terms, the EPI contribution to the band-structure energy and the partial-Fan-Migdal (FM)-occupied contribution. Within the non-adiabatic approximation, we derive a new expression for the partial-FM-occ contribution and show that it has the structure of a higher-order term, and not a second-order term. Along similar lines, we derive new expressions for the computation of the partial-FM-occ term. The new expressions for the partial-FM-occ term must be preferred over the standard expressions, in theoretical and computational studies, because they incorporate the complete physics underlying this term. Unlike the EPI contribution to individual eigenstates, the EPI contribution to the total energy must be computed in the non-adiabatic approximation for all materials, Infra-red (IR) active and IR-inactive. We report the computation of the standard Hamiltonian, for the first time, for Carbon polymorphs (diamond and hexagonal lonsdaleite) by including the EPI contribution to the total energy. This is the most accurate ab initio total energy reported till date. The present work also opens the way to compute the ab initio free-energy more accurately at finite temperatures by including the EPI contribution.
format Preprint
id arxiv_https___arxiv_org_abs_2605_14472
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Accurate computation of the electron-phonon interaction contribution to the total energy
Paul, Shilpa
Gururajan, Mogadalai Pandurangan
Bhattacharya, Amrita
Prasanna, Tiramkudlu R. S.
Materials Science
The standard Hamiltonian of a coupled electron-phonon system is based on second-order perturbation theory. The EPI contribution in the standard Hamiltonian consists of two terms, the EPI contribution to the band-structure energy and the partial-Fan-Migdal (FM)-occupied contribution. Within the non-adiabatic approximation, we derive a new expression for the partial-FM-occ contribution and show that it has the structure of a higher-order term, and not a second-order term. Along similar lines, we derive new expressions for the computation of the partial-FM-occ term. The new expressions for the partial-FM-occ term must be preferred over the standard expressions, in theoretical and computational studies, because they incorporate the complete physics underlying this term. Unlike the EPI contribution to individual eigenstates, the EPI contribution to the total energy must be computed in the non-adiabatic approximation for all materials, Infra-red (IR) active and IR-inactive. We report the computation of the standard Hamiltonian, for the first time, for Carbon polymorphs (diamond and hexagonal lonsdaleite) by including the EPI contribution to the total energy. This is the most accurate ab initio total energy reported till date. The present work also opens the way to compute the ab initio free-energy more accurately at finite temperatures by including the EPI contribution.
title Accurate computation of the electron-phonon interaction contribution to the total energy
topic Materials Science
url https://arxiv.org/abs/2605.14472