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Thomas Faulkner1, Nabil Iqbal, Hong Liu

  • 1Kavli Institute for Theoretical Physics, University of California, Santa Barbara, CA 93106, USA.

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We identified a new class of non-Fermi liquids using advanced theoretical physics. These exotic materials exhibit unique low-energy behaviors, including linear temperature-dependent resistivity, characteristic of strange metals.

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Area of Science:

  • Condensed matter physics
  • High-energy theoretical physics

Background:

  • Fermi liquid theory successfully describes most metals.
  • Non-Fermi liquids, including strange metals and heavy fermions, show anomalous behavior.
  • Understanding these deviations is crucial for materials science.

Purpose of the Study:

  • To identify and characterize a new class of non-Fermi liquids.
  • To explore the underlying theoretical framework governing their exotic properties.
  • To connect theoretical models to experimental observations like linear resistivity.

Main Methods:

  • Utilizing the anti-de-Sitter/conformal field theory (AdS/CFT) correspondence.
  • Analyzing low-energy behavior governed by infrared fixed points.
  • Investigating nonanalytic scaling behavior in the time direction.

Main Results:

  • Identified a class of non-Fermi liquids with unique low-energy properties.
  • Discovered an infrared fixed point governing their behavior.
  • Observed nonanalytic scaling exclusively in the time direction.
  • Found linear temperature dependence of resistivity in some instances.

Conclusions:

  • The AdS/CFT correspondence provides a powerful tool for studying non-Fermi liquids.
  • The identified class offers a new perspective on exotic metallic states.
  • The findings may explain the behavior of strange metals and other quantum critical systems.