Analysis of soft wall AdS / QCD potentials to obtain melting temperature of scalar hadrons
arXiv:1706.01994 · doi:10.1140/epja/i2017-12414-3
Abstract
We consider an analysis of potentials related to Schrödinger-type equations for scalar fields in a 5D AdS black hole background with dilaton in order to get melting temperatures for different hadrons in a thermal bath. The approach does not consider calculations of spectral functions and it is easy to get results for hadrons with an arbitrary number of constituents. We present results for scalar mesons, glueballs, hybrid mesons and tetraquarks, and we show that mesons are more resistant to being melted in a thermal bath than other scalar hadrons, and in general the melting temperature increases when hadrons contain heavy quarks.
5 pages, 2 figures (8 plots)
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Cited by in corpus (7)
- Heavy quarkonia spectroscopy at zero and finite temperature in bottom-up AdS/QCD
- Mesons in a soft-wall AdS-Schwarzschild approach at low temperature
- Baryons in a soft-wall AdS-Schwarzschild approach at low temperature
- Thermal properties of light mesons from holography
- Chiral phase transition at finite chemical potential in 2+1-flavor soft-wall AdS/QCD
- Melting of scalar hadrons in an AdS/QCD model modified by a thermal dilaton
- Temperature dependence of meson-nucleon coupling constant from the AdS/QCD soft-wall model