Journal article
Theory of ab initio downfolding with arbitrary-range electron-phonon coupling
- Abstract:
- Ab initio downfolding describes the electronic structure of materials within a low-energy subspace, often around the Fermi level. Typically starting from mean-field calculations, this framework allows for the calculation of one- and two-electron interactions, and the parametrization of a many-body Hamiltonian representing the active space of interest. The subsequent solution of such Hamiltonians can provide insights into the physics of strongly correlated materials. While phonons can substantially screen electron-electron interactions, electron-phonon coupling has been commonly ignored within ab initio downfolding, and when considered, this is done only for short-range coupling. Here we propose a theory of ab initio downfolding that accounts for short- and long-range electron-phonon coupling on equal footing. Our practical computational implementation is readily compatible with current downfolding approaches. We apply our approach to polar materials MgO and GeTe, and we reveal the importance of both short-range and long-range electron-phonon coupling in determining the magnitude of electron-electron interactions. Our results show that in the static limit, phonons reduce the on-site repulsion between electrons by 40% for MgO and by 79% for GeTe. Our framework also predicts that overall attractive nearest-neighbor interactions arise between electrons in GeTe, consistent with superconductivity in this material.
- Publication status:
- Published
- Peer review status:
- Peer reviewed
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- Files:
-
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(Preview, Accepted manuscript, pdf, 1.0MB, Terms of use)
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(Preview, Version of record, pdf, 1.5MB, Terms of use)
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- Publisher copy:
- 10.1103/7hqv-hn2v
Authors
+ National Science Foundation
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- Funder identifier:
- https://ror.org/021nxhr62
- Grant:
- DMR-2440763
+ United States Department of Energy
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- Funder identifier:
- https://ror.org/01bj3aw27
- Grant:
- DE-AC02-05CH11231
+ National Energy Research Scientific Computing Center
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- Funder identifier:
- https://ror.org/05v3mvq14
- Grant:
- HEP-ERCAP0029167
+ The University of Texas at Austin
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- Funder identifier:
- https://ror.org/00hj54h04
- Publisher:
- American Physical Society
- Journal:
- Physical Review B More from this journal
- Volume:
- 113
- Issue:
- 24
- Article number:
- 245144
- Publication date:
- 2026-06-24
- Acceptance date:
- 2026-05-21
- DOI:
- EISSN:
-
2469-9969
- ISSN:
-
2469-9950
- Language:
-
English
- Pubs id:
-
2444696
- Local pid:
-
pubs:2444696
- Source identifiers:
-
W4411051212
- Deposit date:
-
2026-08-06
- ARK identifier:
Terms of use
- Copyright holder:
- American Physical Society
- Copyright date:
- 2026
- Rights statement:
- © 2026 American Physical Society
- Notes:
- The author accepted manuscript (AAM) of this paper has been made available under the University of Oxford's Open Access Publications Policy, and a CC BY public copyright licence has been applied.
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