Collapsing scenarios of K-essence generalized Vaidya spacetime under $f(\bar{R},\bar{T})$ gravity
Arijit Panda, Goutam Manna, Saibal Ray, Maxim Khlopov, Md. Rabiul Islam

TL;DR
This paper explores how different $f(ar{R}, ar{T})$ gravity models influence the collapse of K-essence Vaidya spacetime, revealing conditions for naked singularities, dark energy dominance, and the coexistence of dark matter and energy.
Contribution
It introduces a novel analysis of K-essence Vaidya collapse within $f(ar{R}, ar{T})$ gravity, highlighting the impact of specific functions on cosmic phenomena and spacetime structure.
Findings
Certain $f(ar{R}, ar{T})$ choices lead to naked singularities.
Some models result in an accelerating universe dominated by dark energy.
Presence of positive and negative masses suggests dark matter and dark energy coexistence.
Abstract
The paper investigates the collapse of the generalized emergent Vaidya spacetime in the setting of gravity, specifically in K-essence theory. In this study, the Dirac-Born-Infeld type non-standard Lagrangian is used to calculate the emergent metric , which is not conformally equivalent to the conventional gravitational metric. We use the function to reflect the additive nature of the emergent Ricci scalar () and the trace of the emergent energy-momentum tensor (). Our study demonstrates that certain choices of may result in the existence of a naked singularity caused by gravitational collapse. The alternative values resulted in an accelerating universe dominated by dark energy. Moreover, the investigation showed the presence of both positive and negative masses,…
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Taxonomy
TopicsCosmology and Gravitation Theories · Relativity and Gravitational Theory · Black Holes and Theoretical Physics
