Strong gauging or decoupling ghost matter
نویسندگان
چکیده
Gauging extra matter is a common way to couple two CFTs discontinuously. We may consider gauging matter by strongly coupled gauge theories at criticality rather than by weakly coupled (asymptotic free) gauge theories. It often triggers relevant deformations and possibly leads to a non-trivial fixed point. In many examples such as the IR limit of SQCDs (and their variants), the relevant RG flow induced by this strong gauging makes the total central charge a increase rather than decrease compared with the sum of the original decoupled CFTs. The dilaton effective field theory argument given by Komargodski and Schwimmer does not apply because strong gauging is not a simple deformation by operators in the original two decoupled CFTs and it may not be UV complete. When the added matter is vector-like, one may emulate strong gauging in a UV completed manner by decoupling of ghost matter. While the UV completed description makes the dilaton effective field theory argument possible, due to the non-unitarity, we cannot conclude the positivity of the central charge difference in accordance with the observations in various examples that show the contrary.
منابع مشابه
The stabilising effect of ghost field gauging on numericalsimulations of Maxwell's equations
Recently an approach was presented to model the electromagnetic environment of passive on-chip structures. This method was developed to describe high-frequency effects such as skin effect, proximity effect, current redistribution etc. As it uses a potential description of Maxwell’s equations, an appropriate choice of the gauge condition is necessary for the uniqueness of the solution. The stand...
متن کاملReformulation of Boundary String Field Theory in terms of Boundary State
We reformulate bosonic boundary string field theory in terms of boundary state. In our formulation, we can formally perform the integration of target space equations of motion for arbitrary field configurations without assuming decoupling of matter and ghost. Thus, we obtain the general form of the action of bosonic boundary string field theory. This formulation may help us to understand possib...
متن کاملNonlinearly Realized Local Scale Invariance: Gravity and Matter
That the scalar field theories with no dimensional couplings possess local scale invariance (LSI) via the curvature gauging is utilized to show that the Goldstone boson, released by the spontaneous LSI breakdown, is swallowed by the spacetime curvature in order to generate Newton’s constant in the same spirit as the induction of vector boson masses via spontaneous gauge symmetry breaking. For E...
متن کاملNonlinear Properties of Vielbein Massive Gravity
We consider a special theory of massive gravity, which is obtained in a decoupling limit from a bi– gravity theory in the vielbein formulation, with only cosmological constant-like interactions between the two gravitational sectors. We investigate this theory using the Stückelberg method, and construct a ’t Hooft–Feynman gauge fixing in which the tensor, vector and scalar Stückelberg fields are...
متن کاملSpontaneous Lorentz Breaking at High Energies
Theories that spontaneously break Lorentz invariance also violate diffeomorphism symmetries, implying the existence of extra degrees of freedom and modifications of gravity. In the minimal model (“ghost condensation”) with only a single extra degree of freedom at low energies, the scale of Lorentz violation cannot be larger than about M ∼ 100 GeV due to an infrared instability in the gravity se...
متن کامل