arXiv · hep-th/0410080
Adjoint Trapping: A New Phenomenon at Strong 't Hooft Coupling
Abstract
Adding matter of mass m, in the fundamental representation of SU(N), to N=4 supersymmetric Yang-Mills theory, we study ``generalized quarkonium'' containing a (s)quark, an anti(s)quark, and J massless (or very light) adjoint particles. At large 't Hooft coupling $λ$ >> 1, the states of spin <= 1 are surprisingly light (Kruczenski et al., hep-th/0304032) and small (hep-th/0312071) with a J-independent size of order $\sqrtλ/m$. This ``trapping'' of adjoint matter in a region small compared with its Compton wavelength and compared to any confinement scale in the theory is an unfamiliar phenomenon, as it does not occur at small $λ$. We explore adjoint trapping further by considering the limit of large J. In particular, for J >> $\sqrtλ$ >> 1, we expect the trapping phenomenon to become unstable. Using Wilson loop methods, we show that a sharp transition, in which the generalized quarkonium states become unbound (for massless adjoints) occurs at $J \simeq 0.22 \sqrtλ$. If the adjoint scalars of N=4 are massive and the theory is confining (as, for instance, in N=1* theories) then the transition becomes a cross-over, across which the size of the states changes rapidly from ~$\sqrtλ/m$ to something of order the confinement scale ~ $Λ^{-1}$.
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Sungho Hong, Sukjin Yoon, Matthew J. Strassler. 2006-02-08. Adjoint Trapping: A New Phenomenon at Strong 't Hooft Coupling. https://doi.org/10.1088/1126-6708%2F2006%2F03%2F012
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