A Phase Space Electronic Structure View of The Solid State
Nadine Bradbury, Joseph Subotnik
Abstract
We develop a phase space electronic structure view of the solid state, where electronic bands are parameterized by both nuclear position Q and nuclear momentum Π (rather than the standard practice of only Q). Within this phase space, non-Born-Oppenheimer electronic structure context, we prove a nuclear wavevector (q)-dependent version of Nafie's equality relating the change in electronic momentum as a function of nuclear momentum, ∂ p/∂ Πq, to the change in electronic position as a function of nuclear position, ∂ r/∂ Qq. Furthermore, we show how information about electron-phonon interactions, specifically nuclear-induced electronic momentum, can be extracted from simple band structure calculations -- without Berry curvature calculations.
Create a lesson
Related papers
Real-Time Emergence of Charge-Transfer-to-Solvent States from Core Excitation
Jiří Suchan, B. Scott Fales, Benjamin G. Levine et al.
ElemCo.jl: A Julia package for electron-correlation methods
Daniel Kats, Charlotte Rickert, Thomas Schraivogel et al.
Franson-Interferometric Bounds on Entangled Two-Photon Absorption
Albin Hedse, Sankaran Ramesh, Luis Matheis et al.
The off-diagonal low rank property: new opportunities for low-scaling computational chemistry methods
Zikuan Wang
Core-valence double ionization of SF6 involving S2p, F1s and S1s inner shells
Veronica Daver Ideböhn, Daniel M. Pereira, Lucas M. Cornetta et al.
Benchmark of Multi-Channel Dyson Equation and Algebraic Diagrammatic Construction Methods for molecules
Mike Keizer, Stefano Paggi, J. Arjan Berger et al.