61 research outputs found
Casimir scaling, glueballs and hybrid gluelumps
Assuming that the Casimir scaling hypothesis is well verified in QCD, masses
of glueballs and hybrid gluelumps (gluon with a point-like pair) are
computed within the rotating string formalism. In our model, two gluons are
attached by an adjoint string in a glueball while the gluon and the colour
octet pair are attached by two fundamental strings in a hybrid
gluelump. Masses for such exotic hadrons are computed with very few free
parameters. These predictions can serve as a guide for experimental searches.
In particular, the ground state glueballs lie on a Regge trajectory and the
lightest state has a mass compatible with some experimental
candidates.Comment: 3 figure
Confining strings in SU(N) gauge theories
We calculate the string tensions of -strings in SU() gauge theories in
both 3 and 4 dimensions. In D=3+1, we find that the ratio of the string
tension to the fundamental string tension is consistent, at the level, with both the M(-theory)QCD-inspired conjecture and with
`Casimir scaling'. In D=2+1 we see a definite deviation from the MQCD formula,
as well as a much smaller but still significant deviation from Casimir scaling.
We find that in both D=2+1 and D=3+1 the high temperature spatial -string
tensions also satisfy approximate Casimir scaling. We point out that
approximate Casimir scaling arises naturally if the cross-section of the flux
tube is nearly independent of the flux carried, and that this will occur in an
effective dual superconducting description, if we are in the deep-London limit.
We estimate, numerically, the intrinsic width of -strings in D=2+1 and
indeed find little variation with . In addition to the stable -strings we
investigate some ofthe unstable strings, finding in D=2+1 that they satisfy
(approximate) Casimir scaling. We also investigate the basic assumption that
confining flux tubes are described by an effective string theory at large
distances. We estimate the coefficient of the universal L\"uscher correction
from periodic strings that are longer than 1 fermi, and find in
D=3+1 and in D=2+1. These values are within of the
simple bosonic string values and are inconsistent with other simple effective
string theories.Comment: 57 pages, 11 figures. Errors on fits reduced by altering the analysis
to a standard one. Conclusions unchanged; note addedchanged. Some typos
correcte
Nonperturbative Renormalization and the QCD Vacuum
We present a self consistent approach to Coulomb gauge Hamiltonian QCD which
allows one to relate single gluon spectral properties to the long range
behavior of the confining interaction. Nonperturbative renormalization is
discussed. The numerical results are in good agreement with phenomenological
and lattice forms of the static potential.Comment: 23 pages in RevTex, 4 postscript figure
k-strings and baryon vertices in SU(N) gauge theories
It is pointed out that the sine law for the k-string tension emerges as the
critical threshold below which the spatial Z_N symmetry of the static baryon
potential is spontaneously broken. This result applies not only to SU(N) gauge
theories, but to any gauge system with stable k-strings admitting a baryon
vertex made with N sources in the fundamental representation. Some simple
examples are worked out.Comment: 4 pages, 4 figures, v2: reference added, v3: comments and references
adde
Vacuum replicas in QCD
The properties of the vacuum are addressed in the two- and four-dimensional
quark models for QCD. It is demonstrated that the two-dimensional QCD ('t Hooft
model) possesses only one possible vacuum state - the solution to the mass-gap
equation, which provides spontaneous breaking of the chiral symmetry (SBCS). On
the contrary, the four-dimensional theory with confinement modeled by the
linear potential supplied by the Coulomb OGE interaction, not only has the
chirally-noninvariant ground vacuum state, but it possesses an excited vacuum
replica, which also exhibits SBCS and can realize as a metastable intermediate
state of hadronic systems. We discuss the influence of the latter on physical
observables as well as on the possibility to probe the vacuum background fields
in QCD.Comment: RevTeX4, 26 pages, 8 EPS figures, extended references, corrected some
typos, to appear in Phys.Rev.
QCD-like theories at nonzero temperature and density
We investigate the properties of hot and/or dense matter in QCD-like theories
with quarks in a (pseudo)real representation of the gauge group using the
Nambu-Jona-Lasinio model. The gauge dynamics is modeled using a simple lattice
spin model with nearest-neighbor interactions. We first keep our discussion as
general as possible, and only later focus on theories with adjoint quarks of
two or three colors. Calculating the phase diagram in the plane of temperature
and quark chemical potential, it is qualitatively confirmed that the critical
temperature of the chiral phase transition is much higher than the
deconfinement transition temperature. At a chemical potential equal to half of
the diquark mass in the vacuum, a diquark Bose-Einstein condensation (BEC)
phase transition occurs. In the two-color case, a Ginzburg-Landau expansion is
used to study the tetracritical behavior around the intersection point of the
deconfinement and BEC transition lines, which are both of second order. We
obtain a compact expression for the expectation value of the Polyakov loop in
an arbitrary representation of the gauge group (for any number of colors),
which allows us to study Casimir scaling at both nonzero temperature and
chemical potential.Comment: JHEP class, 31 pages, 7 eps figures; v2: error in Eq. (3.11) fixed,
two references added; matches published versio
Adjoint "quarks" on coarse anisotropic lattices: Implications for string breaking in full QCD
A detailed study is made of four dimensional SU(2) gauge theory with static
adjoint ``quarks'' in the context of string breaking. A tadpole-improved action
is used to do simulations on lattices with coarse spatial spacings ,
allowing the static potential to be probed at large separations at a
dramatically reduced computational cost. Highly anisotropic lattices are used,
with fine temporal spacings , in order to assess the behavior of the
time-dependent effective potentials. The lattice spacings are determined from
the potentials for quarks in the fundamental representation. Simulations of the
Wilson loop in the adjoint representation are done, and the energies of
magnetic and electric ``gluelumps'' (adjoint quark-gluon bound states) are
calculated, which set the energy scale for string breaking. Correlators of
gauge-fixed static quark propagators, without a connecting string of spatial
links, are analyzed. Correlation functions of gluelump pairs are also
considered; similar correlators have recently been proposed for observing
string breaking in full QCD and other models. A thorough discussion of the
relevance of Wilson loops over other operators for studies of string breaking
is presented, using the simulation results presented here to support a number
of new arguments.Comment: 22 pages, 14 figure
Hybrid mesons and auxiliary fields
Hybrid mesons are exotic mesons in which the color field is not in the ground
state. Their understanding deserves interest from a theoretical point of view,
because it is intimately related to nonperturbative aspects of QCD. Moreover,
it seems that some recently detected particles, such as the and
the Y(4260), are serious hybrid candidates. In this work, we investigate the
description of such exotic hadrons by applying the auxiliary fields technique
to the widely used spinless Salpeter Hamiltonian with appropriate linear
confinement. Instead of the usual numerical resolution, this technique allows
to find simplified analytical mass spectra and wave functions of the
Hamiltonian, which still lead to reliable qualitative predictions. We analyse
and compare two different descriptions of hybrid mesons, namely a two-body
system with an excited flux tube, or a three-body system.
We also compute the masses of the hybrids. Our results are shown to be
in satisfactory agreement with lattice QCD and other effective models.Comment: 19 pages, 4 figure
Confining QCD Strings, Casimir Scaling, and a Euclidean Approach to High-Energy Scattering
We compute the chromo-field distributions of static color-dipoles in the
fundamental and adjoint representation of SU(Nc) in the loop-loop correlation
model and find Casimir scaling in agreement with recent lattice results. Our
model combines perturbative gluon exchange with the non-perturbative stochastic
vacuum model which leads to confinement of the color-charges in the dipole via
a string of color-fields. We compute the energy stored in the confining string
and use low-energy theorems to show consistency with the static quark-antiquark
potential. We generalize Meggiolaro's analytic continuation from parton-parton
to gauge-invariant dipole-dipole scattering and obtain a Euclidean approach to
high-energy scattering that allows us in principle to calculate S-matrix
elements directly in lattice simulations of QCD. We apply this approach and
compute the S-matrix element for high-energy dipole-dipole scattering with the
presented Euclidean loop-loop correlation model. The result confirms the
analytic continuation of the gluon field strength correlator used in all
earlier applications of the stochastic vacuum model to high-energy scattering.Comment: 65 pages, 13 figures, extended and revised version to be published in
Phys. Rev. D (results unchanged, 2 new figures, 1 new table, additional
discussions in Sec.2.3 and Sec.5, new appendix on the non-Abelian Stokes
theorem, old Appendix A -> Sec.3, several references added
Color superconductivity, Z_N flux tubes and monopole confinement in deformed N=2* super Yang-Mills theories
We study the Z_N flux tubes and monopole confinement in deformed N=2* super
Yang-Mills theories. In order to do that we consider an N=4 super Yang-Mills
theory with an arbitrary gauge group G and add some N=2, N=1 and N=0
deformation terms. We analyze some possible vacuum solutions and phases of the
theory, depending on the deformation terms which are added. In the Coulomb
phase for the N=2* theory, G is broken to U(1)^r and the theory has monopole
solutions. Then, by adding some deformation terms, the theory passes to the
Higgs or color superconducting phase, in which G is broken to its center C_G.
In this phase we construct the Z_N flux tubes ansatz and obtain the BPS string
tension. We show that the monopole magnetic fluxes are linear integer
combinations of the string fluxes and therefore the monopoles can become
confined. Then, we obtain a bound for the threshold length of the
string-breaking. We also show the possible formation of a confining system with
3 different monopoles for the SU(3) gauge group. Finally we show that the BPS
string tensions of the theory satisfy the Casimir scaling law.Comment: 18 pages, 2 figures, typo corrections. Version to appear in Phys.
Rev.
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