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arXiv · hep-th/0606053

Massless higher spin D=4 superparticle with both N=1 supersymmetry and its bosonic counterpart

Abstract

We show that the massless higher spin four-dimensional particle model with bosonic counterpart of N=1 supersymmetry respects SU(3,2) invariance. We extend this particle model to a superparticle possessing $SU(3,2|1)$ supersymmetry which is a closure of standard four-dimensional N=1 superconformal symmetry $SU(2,2|1)$ and its bosonic SU(3,2) counterpart. The new massless higher spin D=4 superparticle model describes trajectories in Minkowski superspace $(x^μ, θ^α, \barθ^{\dotα})$ extended by the commuting Weyl spinor $ζ^α$, $\barζ^{\dotα}=(ζ^α)^\ast$. We find the relevant phase space constraints and quantize the model. As a result of quantization we obtain the superwave function which describes an infinite sequence of four-dimensional massless chiral superfields with arbitrary external helicity indices.

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BibTeXRIS

S. Fedoruk, E. Ivanov, J. Lukierski. 2006-06-07. Massless higher spin D=4 superparticle with both N=1 supersymmetry and its bosonic counterpart. https://doi.org/10.1016/j.physletb.2006.08.032

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