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Higher derivative heterotic supergravity on a torus and supersymmetry

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arxiv 2406.14600 v3 pith:MTHOXC7K submitted 2024-06-20 hep-th

classification hep-th
keywords supergravityheteroticmultipletssupersymmetrysymmetryvectorreducedtimes
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abstract

Ignoring ten-dimensional heterotic gauge fields, heterotic supergravity reduced on a $d$-dimensional torus gives rise to a half-maximal supergravity coupled to $d$ vector multiplets. The reduced theory has a continuous $O(d,d;\mathbb R)/O(d)_-\times O(d)_+$ symmetry that persists to all perturbative orders in the string $\alpha'$ expansion. We highlight this symmetry by explicitly reducing the bosonic sector of four-derivative heterotic supergravity as well as its fermionic supersymmetry variations. After appropriate field redefinitions, the resulting action and supersymmetry variations are manifestly $O(d)_-\times O(d)_+$ invariant. This reduction allows us to explore the interplay between the gravity and vector multiplets beyond leading order, where (in our conventions) $O(d)_-$ is the supergravity R-symmetry while $O(d)_+$ is a flavor symmetry of the $d$ vector multiplets.

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Cited by 1 Pith paper

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  1. Multicenter higher-derivative BPS black holes

    hep-th 2025-02 conditional novelty 6.0 of 10

    Two- and three-charge BPS black holes of the torus-reduced heterotic action are rewritten in five-dimensional STU supergravity fields, and the resulting action is shown to differ from known N=2 R^2 invariants.

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