UV Constraints on Massive Spinning Particles: Lessons from the Gravitino
Scott Melville, Diederik Roest, David Stefanyszyn

TL;DR
This paper investigates the strong coupling behavior of massive spin-3/2 particles, like the gravitino, revealing that their self-interactions cannot be tuned to avoid early unitarity violation without additional fields.
Contribution
It provides a detailed analysis of the strong coupling scale for massive spin-3/2 particles and compares it with lower spins, highlighting the role of non-linear symmetries and positivity bounds.
Findings
Strong coupling scale cannot be raised without extra fields.
Positivity bounds restrict possible self-interactions.
Non-Abelian structures like massive gravity satisfy positivity where Abelian theories fail.
Abstract
Self-interacting massive particles with spin unavoidably violate unitarity; the question is at what scale. For spin- the strong coupling scale (at which perturbative unitarity is lost) cannot be raised by any finite tuning of the interactions, while for spin- there exists a special tuning of the Wilson coefficients which can raise this scale (and enjoys numerous special properties such as ghost-freedom). Here, we fill in the missing piece by describing how the self-interactions of a massive spin- field, or "massive gravitino", become strongly coupled at high energies. We show that while several different structures appear in the leading order potential, the strong coupling scale cannot be raised (in the absence of additional fields). At the level of the off-shell Lagrangian, it is always the non-linear symmetries of the longitudinal Stuckelberg mode that dictate the…
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