Dynamic dielectric function and phonon self-energy from electrons strongly correlated with acoustic phonons in 2D Dirac crystals
Sina Kazemian, Giovanni Fanchini

TL;DR
This paper develops a model for the dielectric response function in 2D Dirac crystals considering acoustic phonons, revealing critical features like cuspidal points at Fermi-surface nesting and implications for electron-phonon interactions.
Contribution
It introduces a novel calculation of the dielectric response function for acoustic phonons in 2D Dirac materials, highlighting differences from free-electron models and effects on phonon self-energy.
Findings
Dielectric response function exhibits a cuspidal point at FSN condition.
Strong variability of response derivative persists at finite temperatures.
Response function can tend to infinity even with small sound speed.
Abstract
The unique structure of two-dimensional (2D) Dirac crystals, with electronic bands linear in the proximity of the Brillouin-zone boundary and the Fermi energy, creates anomalous situations where small Fermi-energy perturbations are known to critically affect the electron-related lattice properties of the system. The Fermi-surface nesting (FSN) conditions determining such effects via electron-phonon interaction, require accurate estimates of the crystal's response function as a function of the phonon wavevector q for any values of temperature. Numerous analytical estimates of for 2D Dirac crystals beyond the Thomas-Fermi approximation have been so far carried out only in terms of dielectric response function , for photon and optical-phonon perturbations, due to relative ease of incorporating a q-independent oscillation frequency in their calculation.…
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Taxonomy
TopicsTopological Materials and Phenomena · Graphene research and applications · Thermal properties of materials
