Defocusing dark energy: Raychaudhuri diagnostics beyond w<-1/3 and the phantom divide
Özgür Akarsu, Antonio De Felice, N. Merve Uzun
Abstract
In general relativity, cosmic acceleration is timelike defocusing of the comoving congruence and requires a negative total active gravitational mass density, M tot=ρ tot+3p tot<0. The criterion w p/ρ<-1/3 diagnoses sector repulsion only for ρ>0: the inequality reverses for ρ<0, and ratio variables are ill-defined at ρ=0 even when the stress-energy tensor is finite. For sign-changing effective dark energy (DE), as in Λ sCDM-type histories, we instead use the signed density ρ de and two branch-independent combinations. The regular null energy condition (NEC) boundary I de=ρ de+p de=0 replaces the phantom divide w de=-1, while M de=ρ de+3p de<0 governs sector-level Raychaudhuri repulsion. For a separately conserved DE sector with a smooth negative-to-positive density crossing of finite odd order n at z, we prove that I de and M de are negative in a punctured neighborhood and non-positive at the crossing, while w de develops a kinematic pole with universal residue n(1+z)/3. If M de>0 at some sufficiently high redshift, continuity requires at least one repulsion boundary z rep>z: the sector is already repulsive while ρ de<0. We derive the exact range of ρ de'(z) for acceleration at the crossing with the total NEC satisfied. Under the stated single-impulse and stationary-point assumptions, the deceleration parameter has one or three sign-changing zeros. A smooth Λ sCDM profile, an exponential infrared f(T) model, and the minimal phantom brane illustrate the results. These results motivate organizing late-time inference around (ρ,p,I,M) rather than around w alone.
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