Affiliation:
1. Massachusetts Institute of Technology
2. Harvard University
Abstract
Non-Fermi liquid phenomena arise naturally near critical points of
Landau ordering transitions in metallic systems, where strong
fluctuations of a bosonic order parameter destroy coherent
quasiparticles. Despite progress in developing controlled perturbative
techniques, much of the low energy physics of such metallic quantum
critical points remains poorly understood. We demonstrate that exact,
non-perburbative results can be obtained for both optical transport and
static susceptibilities in “Hertz-Millis” theories of Fermi surfaces
coupled to critical bosons. Such models possess a large emergent
symmetry and anomaly structure, which we leverage to fix these
quantities. In particular, we show that in the infrared limit, the boson
self energy at zero wave vector, \mathbf{q}=0𝐪=0,
is a constant independent of frequency, and the real part of the optical
conductivity, \sigma(\omega)σ(ω),
is purely a delta function Drude peak with no other corrections.
Therefore, further frequency dependence in the boson self energy or
optical conductivity can only come from irrelevant operators in a clean
system. Exact relations between Fermi liquid parameters as the critical
point is approached from the disordered phase are also obtained. The
absence of a universal, power law frequency dependence in the boson self
energy contrasts with previous perturbative calculations, and we explain
the origin of this difference.
Funder
Gordon and Betty Moore Foundation
Simons Foundation
United States Department of Energy
Subject
General Physics and Astronomy
Cited by
19 articles.
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