Theory of phonon instabilities in Weyl semimetals at high magnetic fields
Sarbajaya Kundu, Claude Bourbonnais, Ion Garate

TL;DR
This paper investigates how electron-phonon interactions influence lattice instabilities in Weyl semimetals under high magnetic fields, revealing conditions under which phonons induce phase transitions beyond purely electronic effects.
Contribution
It introduces a renormalization group analysis of electron-electron and electron-phonon interactions in Weyl semimetals, highlighting the significance of phonons in high-field instabilities.
Findings
Cooper channel can suppress electronic but enable lattice instabilities.
Breaking symmetry between Weyl nodes raises the critical temperature for lattice instability.
Adiabatic phonons can induce lattice instabilities before electronic ones.
Abstract
The behavior of three-dimensional (3D) semimetals under strong magnetic fields is a topic of recurring interest in condensed matter physics. Recently, the advent of Weyl and Dirac semimetals has brought about an interesting platform for potentially uncovering phases of matter that combine nontrivial band topology and interactions. While electronic instabilities of such semimetals at strong magnetic fields have been explored theoretically and experimentally, the role of electron-phonon interactions therein has been largely neglected. In this paper, we study the interplay of electron-electron and electron-phonon interactions in a minimal two-node model of Weyl semimetal. Using a Kadanoff-Wilson renormalization group approach, we analyze lattice (Peierls) instabilities emerging from chiral and nonchiral Landau levels as a function of the magnetic field. We consider both the adiabatic and…
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