Position Representation of Effective Electron-Electron Interactions in Solids
Abstract
An essential ingredient in many model Hamiltonians, such as the Hubbard model, is the effective electron-electron interaction , which enters as matrix elements in some localized basis. These matrix elements provide the necessary information in the model, but the localized basis is incomplete for describing . We present a systematic scheme for computing the manifestly basis-independent dynamical interaction in position representation, , and its Fourier transform to time domain, . These functions can serve as an unbiased tool for the construction of model Hamiltonians. For illustration we apply the scheme within the constrained random-phase approximation to the cuprate parent compounds LaCuO and HgBaCuO within the commonly used 1- and 3-band models, and to non-superconducting SrVO within the model. Our method is used to investigate the shape and strength of screening channels in the compounds. We show that the O 2Cu 3 screening gives rise to regions with strong attractive static interaction in the minimal (1-band) model in both cuprates. On the other hand, in the minimal () model of SrVO only regions with a minute attractive interaction are found. The temporal interaction exhibits generic damped oscillations in all compounds, and its time-integral is shown to be the potential caused by inserting a frozen point charge at . When studying the latter within the three-band model for the cuprates, short time intervals are found to produce a negative potential.
Cite
@article{arxiv.1902.01176,
title = {Position Representation of Effective Electron-Electron Interactions in Solids},
author = {Tor Jonas Sjöstrand and Fredrik Nilsson and Christoph Friedrich and Ferdi Aryasetiawan},
journal= {arXiv preprint arXiv:1902.01176},
year = {2019}
}
Comments
15 pages, 13 figures