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String Theory, Quantum Phase Transitions and the Emergent Fermi-Liquid
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String Theory, Quantum Phase Transitions and the Emergent Fermi-Liquid
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A central problem in quantum condensed matter physics is the critical theory governing the zero temperature quantum phase transition between strongly renormalized Fermi-liquids as found in heavy fermion intermetallics and possibly high Tc superconductors. We present here results showing that the mathematics of string theory is capable of describing such fermionic quantum critical states. Using the Anti-de-Sitter/Conformal Field Theory (AdS/CFT) correspondence to relate fermionic quantum critical fields to a gravitational problem, we compute the spectral functions of fermions in the field theory. By increasing the fermion density away from the relativistic quantum critical point, a state emerges with all the features of the Fermi-liquid.
Forward citations
Cited by 3 Pith papers
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Holographic Learning from Fermionic Spectra: Application to Strange Metal Phenomenology
Neural ODEs learn that normalized low-T cuprate PLL spectra are well described by conformal-to-AdS2 black holes with nearly vanishing gauge potential, while thermodynamics remain invisible to the massless probe.
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Holographic Learning from Fermionic Spectra: Application to Strange Metal Phenomenology
A Neural-ODE framework reconstructs effective black-hole metric functions and gauge potential from fermionic spectral functions, validates on known holographic models, and shows low-temperature cuprate strange-metal s...
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Analytical and Numerical Study of Quartic Nonlinear Electrodynamics in Holographic Fermion Systems
An F^4-deformed bulk gauge field raises the chemical potential, lowers T/μ, shifts the Fermi momentum upward, and sharpens the holographic spectral peak without destroying the Fermi surface.
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