Spinor-helicity formalism for massive and massless amplitudes in five dimensions
Marco Chiodaroli, Murat Gunaydin, Henrik Johansson, Radu Roiban

TL;DR
This paper develops a five-dimensional spinor-helicity formalism for massless, massive, and supersymmetric amplitudes, providing explicit representations and superamplitudes, and exploring double-copy constructions in gravity theories.
Contribution
It introduces a systematic five-dimensional spinor-helicity formalism applicable to various states, including massive tensor states, and presents novel superamplitudes and double-copy examples.
Findings
Explicit spinor and polarization variables for 5D states
Compact superamplitudes for multiplicity three and four
New superamplitudes not upliftable to six dimensions
Abstract
Five-dimensional gauge and gravity theories are known to exhibit striking properties. D=5 is the lowest dimension where massive tensor states appear naturally, providing a testing ground for perturbative insights into six-dimensional tensor theories. Five-dimensional supergravities are highly constrained and admit elegant geometric and algebraic formulations, with global symmetries manifest at the Lagrangian level. In this paper, we take a step towards the systematic investigation of amplitudes in five dimensions, and present a five-dimensional version of the spinor-helicity formalism, applicable to massless, massive and supersymmetric states. We give explicit representations for on-shell spinor and polarization variables such that the little-group symmetry and gauge redundancy are manifest. Massive self-dual tensor states are discussed in some detail, as well as all the on-shell…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Particle physics theoretical and experimental studies · Noncommutative and Quantum Gravity Theories
