Continuous quantum phase transition in the fermionic mass solutions of the Nambu-Jona-Lasinio model
Alireza Beygi, S. P. Klevansky, and R. H. Lemmer

TL;DR
This paper investigates a continuous quantum phase transition in the Nambu-Jona-Lasinio model by analyzing the complex structure of the gap equation, revealing a transition characterized by a complex order parameter and consistent critical behavior.
Contribution
It demonstrates a continuous quantum phase transition in the NJL model through complex analysis of the gap equation, extending understanding beyond traditional strong-coupling regimes.
Findings
The phase transition is characterized by a complex order parameter on the Riemann surface.
The critical exponent of the order parameter is approximately 0.55, independent of regularization.
Goldstone modes remain massless, while scalar mesons develop a width near the transition.
Abstract
Recently quantum simulators have been constructed to investigate experimentally the most prominent theoretical four-point many-body system described by the Hubbard model. By varying the coupling strength of the four-point interaction in relation to the kinetic term, one can analyze the phase structure of the model. This intriguing fact leads us to investigate whether similar Hamiltonians with four-point interactions can also be studied as a function of their four-point coupling strength. In this paper, we reexamine the Nambu-Jona-Lasinio model, regarding it generally beyond the context of quantum chromodynamics. Essentially, it is a model in which particle-antiparticle pairing leads to a BCS-like condensate, with the result that chiral symmetry is broken dynamically in the strong-coupling regime. To study the behavior of the system, it is necessary to move from this regime to a…
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