2020/02/29 by Timo Alho, T. Alho, Jere Remes +2 · 8 citations
Mathematics · Physics and Astronomy · #Black Holes and Theoretical Physics #Critical phenomena #Deconfinement #Gauge (firearms) #Gauge theory #Geometry #High-Energy Particle Collisions Research #Holography #Invariant (physics) #Inverse #Materials science #Mathematical physics #Mathematics #Operator (biology) #Phase transition #Physics #Quantum Chromodynamics and Particle Interactions #Quantum chromodynamics #Quantum electrodynamics #Quantum mechanics #Quasinormal mode #Regularization (linguistics) #Scalar (mathematics) #Scalar field #Thermalisation #hep-ph #hep-th
paper · pdf · open access · doi:10.1103/physrevd.101.106025
published in Physical review. D/Physical review. D. 101(10) (American Physical Society) · 13 pages, 9 figures
arxiv created 2020/05/10 · openalex publication_date 2020/05/26 · arxiv updated 2020/06/04 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
Following a series of similar calculations in simpler nonconformal holographic setups, we determine the quasinormal mode spectrum for an operator dual to a gauge-invariant scalar field within the improved holographic QCD framework. At temperatures somewhat above the critical temperature of the deconfinement transition, we find a small number of clearly separated modes followed by a branch-cut-like structure parallel to the real axis, the presence of which is linked to the form of the IHQCD potential employed. The temperature dependence of the lowest nonzero mode is furthermore used to study the thermalization time of the corresponding correlator, which is found to be of the order of the inverse critical temperature near the phase transition and decrease slightly faster than 1/T at higher temperatures.