QCD Anderson transition at zero and non-zero external magnetic fields
Robin Kehr, Adeilton Dean Marques Valois, Lorenz von Smekal

TL;DR
This study investigates the QCD Anderson transition's behavior under zero and non-zero magnetic fields using lattice QCD, revealing non-monotonic effects and supporting alternative localization measurement methods.
Contribution
It provides new lattice QCD insights into how external magnetic fields influence the Anderson transition and introduces an alternative observable for localization.
Findings
Mobility edge does not vanish at the chiral transition temperature.
Preliminary results show non-monotonic mobility edge behavior with magnetic field.
Magnetic fields may reduce the Anderson transition temperature.
Abstract
The QCD Anderson transition is believed to be connected to both deconfinement and chiral crossovers. These crossovers are substantially affected when external magnetic fields () are present, most prominently, e.g., via magnetic catalysis and inverse magnetic catalysis. In this work, we use lattice QCD to investigate the Anderson transition in two different setups: (1) at by studying the low-lying eigenmodes of the overlap operator using gauge configurations with quark flavors of twisted-mass Wilson fermions. We estimate the mobility edge below which eigenmodes are localized via the inflection point of the so-called relative volume. Previous work has shown that, contrary to expectations, this estimate does not vanish at the temperature of the chiral phase transition. A possible scenario for this apparent contradiction was discussed, and in this work, we present an…
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