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Journal Article

Quantum Breaking Bound on de Sitter and Swampland

MPS-Authors

Dvali,  Gia
Max Planck Institute for Physics, Max Planck Society and Cooperation Partners;

Gomez,  Cesar
Max Planck Institute for Physics, Max Planck Society and Cooperation Partners;

Zell,  Sebastian
Max Planck Institute for Physics, Max Planck Society and Cooperation Partners;

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Citation

Dvali, G., Gomez, C., & Zell, S. (2019). Quantum Breaking Bound on de Sitter and Swampland. Fortschritte der Physik/Progress of Physics, 67, 1800094. Retrieved from https://publications.mppmu.mpg.de/?action=search&mpi=MPP-2019-49.


Cite as: https://hdl.handle.net/21.11116/0000-0005-D697-F
Abstract
Quantum consistency suggests that any de Sitter patch that lasts a number of Hubble times that exceeds its Gibbons-Hawking entropy divided by the number of light particle species suffers an effect of quantum breaking. Inclusion of other interactions makes the quantum break-time shorter. The requirement that this must not happen puts severe constraints on scalar potentials, essentially suppressing the self-reproduction regimes. In particular, it eliminates both local and global minima with positive energy densities and imposes a general upper bound on the number of e-foldings in any given Hubble patch. Consequently, maxima and other tachyonic directions must be curved stronger than the corresponding Hubble parameter. We show that the key relations of the recently-proposed de Sitter swampland conjecture follow from the de Sitter quantum breaking bound. We give a general derivation and also illustrate this on a concrete example of D-brane inflation. We can say that string theory as a consistent theory of quantum gravity nullifies a positive vacuum energy in self-defense against quantum breaking.