scholarly journals The deconfinement and Hagedorn phase transitions in weakly coupled large N gauge theories

2004 ◽  
Vol 5 (9-10) ◽  
pp. 945-954 ◽  
Author(s):  
Ofer Aharony ◽  
Joseph Marsano ◽  
Shiraz Minwalla ◽  
Kyriakos Papadodimas ◽  
Mark Van Raamsdonk
2021 ◽  
Vol 2021 (8) ◽  
Author(s):  
Soumyadeep Chaudhuri ◽  
Eliezer Rabinovici

Abstract Considering marginally relevant and relevant deformations of the weakly coupled (3 + 1)-dimensional large N conformal gauge theories introduced in [1], we study the patterns of phase transitions in these systems that lead to a symmetry-broken phase in the high temperature limit. These deformations involve only the scalar fields in the models. The marginally relevant deformations are obtained by varying certain double trace quartic couplings between the scalar fields. The relevant deformations, on the other hand, are obtained by adding masses to the scalar fields while keeping all the couplings frozen at their fixed point values. At the N → ∞ limit, the RG flows triggered by these deformations approach the aforementioned weakly coupled CFTs in the UV regime. These UV fixed points lie on a conformal manifold with the shape of a circle in the space of couplings. As shown in [1], in certain parameter regimes a subset of points on this manifold exhibits thermal order characterized by the spontaneous breaking of a global ℤ2 or U(1) symmetry and Higgsing of a subset of gauge bosons at all nonzero temperatures. We show that the RG flows triggered by the marginally relevant deformations lead to a weakly coupled IR fixed point which lacks the thermal order. Thus, the systems defined by these RG flows undergo a transition from a disordered phase at low temperatures to an ordered phase at high temperatures. This provides examples of both inverse symmetry breaking and symmetry nonrestoration. For the relevant deformations, we demonstrate that a variety of phase transitions are possible depending on the signs and magnitudes of the squares of the masses added to the scalar fields. Using thermal perturbation theory, we derive the approximate values of the critical temperatures for all these phase transitions. All the results are obtained at the N → ∞ limit. Most of them are found in a reliable weak coupling regime and for others we present qualitative arguments.


2004 ◽  
Vol 8 (4) ◽  
pp. 603-696 ◽  
Author(s):  
Ofer Aharony ◽  
Joseph Marsano ◽  
Shiraz Minwalla ◽  
Kyriakos Papadodimas ◽  
Mark Van Raamsdonk

Author(s):  
OFER AHARONY ◽  
JOSEPH MARSANO ◽  
SHIRAZ MINWALLA ◽  
KYRIAKOS PAPADODIMAS ◽  
MARK VAN RAAMSDONK

1998 ◽  
Vol 1998 (06) ◽  
pp. 001-001 ◽  
Author(s):  
Andreas Brandhuber ◽  
Nissan Itzhaki ◽  
Jacob Sonnenschein ◽  
Shimon Yankielowicz

2020 ◽  
Vol 101 (1) ◽  
Author(s):  
Aleksey Cherman ◽  
Syo Kamata ◽  
Thomas Schäfer ◽  
Mithat Ünsal

2021 ◽  
Vol 2021 (10) ◽  
Author(s):  
Prarit Agarwal ◽  
Ki-Hong Lee ◽  
Jaewon Song

Abstract We classify the large N limits of four-dimensional supersymmetric gauge theories with simple gauge groups that flow to superconformal fixed points. We restrict ourselves to the ones without a superpotential and with a fixed flavor symmetry. We find 35 classes in total, with 8 having a dense spectrum of chiral gauge-invariant operators. The central charges a and c for the dense theories grow linearly in N in contrast to the N2 growth for the theories with a sparse spectrum. The difference between the central charges a − c can have both signs, and it does not vanish in the large N limit for the dense theories. We find that there can be multiple bands separated by a gap, or a discrete spectrum above the band. We also find a criterion on the matter content for the fixed point theory to possess either a dense or sparse spectrum. We discover a few curious aspects regarding supersymmetric RG flows and a-maximization along the way. For all the theories with the dense spectrum, the AdS version of the Weak Gravity Conjecture (including the convex hull condition for the cases with multiple U(1)’s) holds for large enough N even though they do not have weakly-coupled gravity duals.


2008 ◽  
Vol 120 (3) ◽  
pp. 473-508 ◽  
Author(s):  
K. Murata ◽  
T. Nishioka ◽  
N. Tanahashi ◽  
H. Yumisaki

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