English

Observation of non-Fermi liquid physics in a quantum critical metal via quantum loop topography

Strongly Correlated Electrons 2021-07-23 v1

Abstract

Non-Fermi liquid physics is a ubiquitous feature in strongly correlated metals, manifesting itself in anomalous transport properties, such as a TT-linear resistivity in experiments. However, its theoretical understanding in terms of microscopic models is lacking despite decades of conceptual work and attempted numerical simulations. Here we demonstrate that a combination of sign problem-free quantum Monte Carlo sampling and quantum loop topography, a physics-inspired machine learning approach, can map out the emergence of non-Fermi liquid physics in the vicinity of a quantum critical point with little prior knowledge. Using only three parameter points for training the underlying neural network, we are able to reproducibly identify a stable non-Fermi liquid regime tracing the fan of a metallic quantum critical points at the onset of both spin-density wave and nematic order. Our study thereby provides an important proof-of-principle example that new physics can be detected via unbiased machine-learning approaches.

Keywords

Cite

@article{arxiv.2007.07898,
  title  = {Observation of non-Fermi liquid physics in a quantum critical metal via quantum loop topography},
  author = {George and Driskell and Samuel Lederer and Carsten Bauer and Simon Trebst and Eun-Ah Kim},
  journal= {arXiv preprint arXiv:2007.07898},
  year   = {2021}
}

Comments

6 pages, 4 figures, attached supplementary materials