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Bell violation in $2\rightarrow 2$ scattering in photon, gluon and graviton EFTs

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arxiv 2303.03375 v1 pith:U4LZOFYC submitted 2023-03-06 hep-th hep-phquant-ph

classification hep-thhep-phquant-ph
keywords bellscatteringstatetheoriesviolationeftsinitialfinal
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

In this paper, we explore Bell inequality violation for $2\rightarrow2$ scattering in Effective Field Theories (EFTs) of photons, gluons, and gravitons. Using the CGLMP Bell parameter ($I_2$), we show that, starting from an appropriate initial non-product state, the Bell inequality can always be violated in the final state (i.e.,$I_2 >2$) at least for some scattering angle. For an initial product state, we demonstrate that abelian gauge theories behave qualitatively differently than non-abelian gauge theories (or Gravity) from the point of view of Bell violation in the final state: in the non-abelian case, Bell violation ($I_2>2$) is never possible within the validity of EFTs for weakly coupled UV completions. Interestingly, we also find that, for a maximally entangled initial state, scattering can reduce the degree of entanglement only for CP-violating theories. Thus Bell violation in $2\rightarrow2$ scattering can, in principle, be used to classify CP conserving vs violating theories.

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