Dynamical kinetic energy quenching in the antiferromagnetic quantum critical metals
Anton Borissov, Vladimir Calvera, Sung-Sik Lee

TL;DR
This paper investigates the low-energy dynamics of critical spin fluctuations and hot electrons in antiferromagnetic quantum critical metals with different symmetries, revealing how kinetic energy quenching affects their scaling behaviors.
Contribution
It introduces a detailed analysis of how higher-order quantum corrections and kinetic energy quenching influence the critical dynamics across different symmetry groups.
Findings
The low-energy physics differs significantly among $Z_2$, $O(2)$, and $O(3)$ theories.
Kinetic energy quenching causes the speed of collective modes and Fermi velocities to vanish at low energies.
The theories exhibit distinct hierarchy and crossover behaviors governed by quasi-fixed points.
Abstract
We study the dynamics of critical spin fluctuations and hot electrons at the metallic antiferromagnetic quantum critical points with and spin symmetries, building upon earlier works on the symmetric theory. The interacting theories in dimensions are approached from -dimensional theories in the -expansion that tunes the co-dimension of Fermi surface as a control parameter. The low-energy physics of the and theories qualitatively differ from each other and also from that of the theory. The difference is caused by higher-order quantum corrections beyond the one-loop order that are important even to the leading order in . The naive loop-expansion breaks down due to dynamical quenching of kinetic energy: the speed of the collective mode () and the Fermi velocity perpendicular to the magnetic ordering vector ()…
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Taxonomy
TopicsHigh-pressure geophysics and materials · Physics of Superconductivity and Magnetism · Topological Materials and Phenomena
