Ginzburg-Landau Formalism in a Tilted Dirac Cone Metric

Fuente: arXiv
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Main Author: Rastkhadiv, Mohammad Amin
Format: Preprint
Published: 2025
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author Rastkhadiv, Mohammad Amin
author_facet Rastkhadiv, Mohammad Amin
contents Recent researches on tilted Dirac cone materials have unveiled an astonishing property, the metric of the spacetime can be altered in these materials by applying a perpendicular electric field. This phenomenon is observed near the Fermi velocity, which is significantly lower than the speed of light. According to this property, we derive the Ginzburg-Landau action from the microscopic Hamiltonian of the BCS theory for the tilted Dirac cone materials. This derivation is performed near the critical point within the framework of curved spacetime. The novelty of the present work lies in deriving a general Ginzburg-Landau action that depends on spacetime curvature, where the curvature is tuned by an external electric field. Furthermore, this finding enables us to apply the Ginzburg-Landau theory at high temperatures by changing the spacetime metric, potentially offering insights into achieving high-temperature superconductivity in these materials.
format Preprint
id arxiv_https___arxiv_org_abs_2509_12731
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ginzburg-Landau Formalism in a Tilted Dirac Cone Metric
Rastkhadiv, Mohammad Amin
Superconductivity
Recent researches on tilted Dirac cone materials have unveiled an astonishing property, the metric of the spacetime can be altered in these materials by applying a perpendicular electric field. This phenomenon is observed near the Fermi velocity, which is significantly lower than the speed of light. According to this property, we derive the Ginzburg-Landau action from the microscopic Hamiltonian of the BCS theory for the tilted Dirac cone materials. This derivation is performed near the critical point within the framework of curved spacetime. The novelty of the present work lies in deriving a general Ginzburg-Landau action that depends on spacetime curvature, where the curvature is tuned by an external electric field. Furthermore, this finding enables us to apply the Ginzburg-Landau theory at high temperatures by changing the spacetime metric, potentially offering insights into achieving high-temperature superconductivity in these materials.
title Ginzburg-Landau Formalism in a Tilted Dirac Cone Metric
topic Superconductivity
url https://arxiv.org/abs/2509.12731