arXiv:2305.00996·v1·High Energy Physics — Phenomenology
Detecting the critical point through entanglement in Schwinger model
Kazuki Ikeda🇺🇸 · Dmitri E. Kharzeev🇺🇸 · René Meyer🇩🇪 · Shuzhe Shi🇺🇸
Abstract
Using quantum simulations on classical hardware, we study the phase diagram of the massive Schwinger model with a -term at finite chemical potential . We find that the quantum critical point in the phase diagram of the model can be detected through the entanglement entropy and entanglement spectrum. As a first step, we chart the phase diagram using conventional methods by computing the dependence of the charge and chiral condensates on the fermion mass , coupling constant , and the chemical potential . At zero density, the Schwinger model possesses a quantum critical point at and . We find that the position of this quantum critical point depends on the chemical potential. Near this quantum critical point, we observe a sharp maximum in the entanglement entropy. Moreover, we find that the quantum critical point can be located from the entanglement spectrum by detecting the position of the gap closing point.