Strongly coupled super Yang-Mills plasma on the Coulomb branch I: Thermodynamics
arXiv:1610.09792 · doi:10.1103/PhysRevD.100.066010
Abstract
We study super Yang-Mills theory on the Coulomb branch (cSYM) in the strong coupling limit by using the AdS/CFT correspondence. The dual geometry is the rotating black 3-brane Type IIB supergravity solution with a single non-zero rotation parameter which sets a fixed mass scale corresponding to the scalar condensate in the Coulomb branch. We introduce a new ensemble where and are held fixed, i.e., the free energy is a function of and . We compute the equation of state (EoS) of cSYM at finite , as well as the heavy quark-antiquark potential and the quantized mass spectrums of the scalar and spin-2 glueballs at . By computing the Wilson loop (minimal surface) at , we determine the heavy quark-antiquark potential to be the Cornell potential, which is confining for large separation . At , we find two black hole branches: the large black hole and small black hole branches. For the large black hole branch, that has positive specific heat, we find qualitatively similar EoS to that of pure Yang-Mills theory on the lattice. For the small black hole branch, that has negative specific heat, we find an EoS where the entropy and energy densities decrease with . We also find a second-order phase transition between the large and small black hole branches with critical temperature .
7 pages, 7 figures; the discussion and conjecture about hadronization is removed and will be addressed elsewhere with a proof
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Cited by in corpus (4)
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- Strongly coupled super Yang-Mills plasma on the Coulomb branch II: Transport coefficients and hard probe parameters