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Decoherence of Cosmological Perturbations from Boundary Terms and the Non-Classicality of Gravity
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abstract
We note that the decoherence of inflationary curvature perturbation $\zeta$ is dominated by a boundary term of the gravity action. Although this boundary term cannot affect cosmological correlators $\left\langle \zeta^n \right\rangle$, it induces much faster decoherence for $\zeta$ than that of previous calculations. The gravitational origin of inflationary decoherence sheds light on the quantum (or non-classical) nature of gravity. By comparing with a Schr\"odinger-Newton toy model of classical gravity, we show that gravity theories of classical or quantum origins can be distinguished by comparing their different impacts on decoherence rate of $\zeta$. Our calculation also indicates that density fluctuation $\delta\rho$ better preserves quantum information than $\zeta$ for the purpose of constructing cosmological Bell-like experiments.
Forward citations
Cited by 3 Pith papers
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Inflationary Decoherence from the Gravitational Floor
Gravitational self-interactions alone decohere super-Hubble inflationary fluctuations with purity loss growing as (aH/k)^5, faster than the a^3 growth of earlier calculations.
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An Open Effective Field Theory for light in a medium
A dissipative open EFT for photons in a medium is constructed, featuring a deformed advanced gauge symmetry and a noise constraint vμ(jμ+ξμ)=0.
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Does decoherence violate decoupling?
Tracing out a heavy field can appear to decohere a light field, but the apparent decoherence is an artifact of the chosen bipartition; the energy-based EFT projection preserves purity.
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