On Anderson Localization and Chiral Anomaly in Disordered Time-Reversal Invariant Weyl Semimetals: Nonperturbative and Berry Phase Effects
Imam Makhfudz

TL;DR
This paper investigates how disorder affects the topological and transport properties of time-reversal invariant Weyl semimetals, revealing that Berry phase effects can prevent Anderson localization and preserve chiral phenomena.
Contribution
It introduces a nonperturbative topological framework showing Berry phase effects can impede localization in disordered Weyl semimetals.
Findings
Chiral symmetry is restored at short length scales in the nonlinear sigma model.
Anderson localization occurs at strong disorder, leading to disappearance of chirality.
Berry phase induces destructive interference that resists localization.
Abstract
Weyl semimetal, a three-dimensional electronic system with relativistic linear energy dispersion around gapless points carrying nontrivial Berry charge, is predicted to exhibit a wealth of unique response and transport properties.A crucial question is whether those properties are robust against disorder and whether Anderson localization occurs.In this work, the effects of nonperturbative topological (vortex loop) excitations and Berry phase in disordered time-reversal invariant 3d Weyl semimetal are studied.It is shown that the chiral symmetry is restored in the nonlinear sigma model describing the diffusons upon disorder average as any net topological term and its delocalization result do not take effect at sufficiently short length scales.Anderson localization occurs at sufficiently strong disorder and we predict that chirality and related phenomena disappear at such…
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