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Strongly coupled quantum field theory

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arxiv hep-th/0511068 v4 pith:DGSHFSIS submitted 2005-11-06 hep-th cond-mat.otherhep-phmath-phmath.MP

classification hep-thcond-mat.otherhep-phmath-phmath.MP
keywords theoryfieldlambdaagreementcoupledcouplingfirstlimit
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abstract

We analyze numerically a two-dimensional $\lambda\phi^4$ theory showing that in the limit of a strong coupling $\lambda\to\infty$ just the homogeneous solutions for time evolution are relevant in agreement with the duality principle in perturbation theory as presented in [M.Frasca, Phys. Rev. A {\bf 58}, 3439 (1998)], being negligible the contribution of the spatial varying parts of the dynamical equations. A consequence is that the Green function method works for this non-linear problem in the large coupling limit as in a linear theory. A numerical proof is given for this. With these results at hand, we built a strongly coupled quantum field theory for a $\lambda\phi^4$ interacting field computing the first order correction to the generating functional. Mass spectrum of the theory is obtained turning out to be that of a harmonic oscillator with no dependence on the dimensionality of spacetime. The agreement with the Lehmann-K\"allen representation of the perturbation series is then shown at the first order.

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    A strongly coupled Higgs-Yang-Mills dark sector with a cosmic-triad gauge field can mimic quintessence dark energy with an equation of state approaching -1, provided the solution phase is tuned.

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