Possible quantum nematic in a colossal magnetoresistance material
Gabrielle Beaudin, Lucie Maude Fournier, Michael Nicklas, Michel, Kenzelmann, Mark Laver, William Witczak-Krempa, Andrea D. Bianchi

TL;DR
This study provides evidence of a possible quantum nematic phase in EuB6, a material with colossal magnetoresistance, by using angle-resolved magnetoresistance measurements to detect symmetry breaking linked to electron interactions.
Contribution
First experimental indication of a quantum nematic phase in EuB6 through AMRO measurements revealing symmetry breaking in its electronic structure.
Findings
Symmetry breaking observed in EuB6 via two-fold AMRO oscillations.
The nematic phase appears in the same region as colossal magnetoresistance.
Magnetic polarons may drive the nematicity in EuB6.
Abstract
EuB6 has for a long time captured the attention of the physics community, as it shows a ferromagnetic phase transition leading to a insulator the metal transition together with colossal magnetoresistance (CMR). EuB6 has a very low carrier density, which is known to drastically change the interaction between the localized Eu moments and the conduction electrons. One of early triumphs of the quantum theory in condensed matter was the presence of Fermi surface, which is intimately linked to the symmetry of the underlying crystal lattice. This symmetry can be probed by angle resolved magnetoresistance (AMRO) measurements. Here, we present angle resolved magnetoresistance (AMRO) measurements that show a that in EuB6 this symmetry is broken, possibly indicating the presence of a quantum nematic phase. We identify the region in the temperature-magnetic field phase diagram where the…
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Taxonomy
TopicsMagnetic Properties of Alloys · Magnetic properties of thin films · Theoretical and Computational Physics
