Emergent Cosmos in Einstein-Cartan Theory
H. Hadi, Y. Heydarzade, M. Hashemi, F. Darabi

TL;DR
This paper explores how intrinsic spin in matter influences the universe's accelerated expansion within Einstein-Cartan theory, modifying thermodynamic laws and deriving a total entropy bound based on emergent space concepts.
Contribution
It introduces a correction to Padmanabhan's emergent space relation by incorporating spin degrees of freedom in Einstein-Cartan theory, extending thermodynamic analysis of the universe.
Findings
Modified Friedmann equations include spin effects.
Derived a total entropy bound for the universe.
Confirmed the validity of thermodynamic laws in Einstein-Cartan cosmology.
Abstract
Based on the Padmanabhan's proposal, the accelerated expansion of the universe can be driven by the difference between the surface and bulk degrees of freedom in a region of space, described by the relation where and are the degrees of freedom assigned to the surface area and the matter-energy content inside the bulk such that the indexes and represent energy-momentum and dark energy, respectively. In the present work, the dynamical effect of the Weyssenhoff perfect fluid with intrinsic spin and its corresponding spin degrees of freedom in the framework of Einstein-Cartan (EC) theory are investigated. Based on the modification of Friedmann equations due to the spin-spin interactions, a correction term for the Padmanabhan's original relation including the number of degrees of freedom…
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