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arXiv · 2407.07148

Hunting 3d $\mathcal{N}=1$ SQED in the $ε$-expansion

Abstract

It was recently shown that $3d$ $\mathcal{N}=1$ supersymmetric Wess-Zumino models can be studied in the $ε$-expansion by analytically continuing the number of fermionic degrees of freedom to be half-integer. In this work we study the extension of this strategy to gauge theories. We consider $U(1)$ gauge theories with $N_g$ neutral Majorana fermions $χ_a$, $N_f$ charge-1 bosons $ϕ_i$ and $N_f\times N_g$ charge-1 Dirac fermions $ψ_{ia}$ in the $d=4-2ε$ expansion. Analytically continuing to $N_g=\frac12$ schematically matches the Lagrangian and matter content of $3d$ $\mathcal{N}=1$ SQED, and we check whether this match can be made rigorous. We compute anomalous dimensions of $χ_a$ up to two loops and of meson operators up to one loop at the fixed points, and compare to expectations from SUSY. While we find obstructions to SUSY at small $N_f$, at large $N_f$ the observables approach the expected values at a SUSY fixed point. This may allow for checks of $3d$ $\mathcal{N}=1$ IR dualities between gauge theories.

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BibTeXRIS

Yacov-Nir Breitstein, Adar Sharon. 2024-07-17. Hunting 3d $\mathcal{N}=1$ SQED in the $ε$-expansion. https://arxiv.org/abs/2407.07148

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