Iso-μ/T holographic entropy and its attractor for a strongly coupled quantum fluid
W. Barreto
Abstract
Numerical evidence has shown that a period of vanishing entropy production during far-from-equilibrium stages induces subsequent violations of the dominant energy condition in strongly coupled plasmas. This behavior also appears to hold for a Bjorken-expanding, hot and dense strongly coupled quantum fluid. In this context, it has been established that the chemical potential-to-temperature ratio (μ/T) in the medium increases with higher initial charge density, ρ0, and/or lower initial energy density, 0. Here, we present a numerical method to evolve Bjorken R-charged plasmas by varying (0,ρ0) in order to generate a curve that preserves a constant μ/T. This allows us to address the case in which all Bekenstein-Hawking entropy densities evolve towards configurations with the same μ/T. This approach enables a more direct comparison with the N=4 SYM plasma case (μ/T=0) and, consequently, provides clearer evidence of the correlation between entropy production and violations of the dominant energy condition. Moreover, this procedure offers a characterization (albeit numerical and partial) of the iso-μ/T entropy density hydrodynamic attractor for hot and dense strongly coupled quantum fluids.
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