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Causality Constraints on Corrections to the Graviton Three-Point Coupling

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Camanho,  Xian O.
Quantum Gravity & Unified Theories, AEI-Golm, MPI for Gravitational Physics, Max Planck Society;

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1407.5597.pdf
(Preprint), 707KB

JHEP02(2016)020.pdf
(Publisher version), 826KB

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Citation

Camanho, X. O., Edelstein, J. D., Maldacena, J., & Zhiboedov, A. (2016). Causality Constraints on Corrections to the Graviton Three-Point Coupling. Journal of high energy physics: JHEP, 2016(02): 020. doi:10.1007/JHEP02(2016)020.


Cite as: https://hdl.handle.net/11858/00-001M-0000-0023-CCDF-C
Abstract
We consider higher derivative corrections to the graviton three-point coupling within a weakly coupled theory of gravity. Lorentz invariance allows further structures beyond the one present in the Einstein theory. We argue that these are constrained by causality. We devise a thought experiment involving a high energy scattering process which leads to causality violation if the graviton three-point vertex contains the additional structures. This violation cannot be fixed by adding conventional particles with spins $J \leq 2$. But, it can be fixed by adding an infinite tower of extra massive particles with higher spins, $J > 2$. In AdS theories this implies a constraint on the conformal anomaly coefficients $\left|{a - c \over c} \right| \lesssim {1 \over \Delta_{gap}^2}$ in terms of $\Delta_{gap}$, the dimension of the lightest single particle operator with spin $J > 2$. For inflation, or de Sitter-like solutions, it indicates the existence of massive higher spin particles if the gravity wave non-gaussianity deviates significantly from the one computed in the Einstein theory.