Complexity factor for anisotropic self-gravitating sphere in Rastall gravity

Author:

Nazar H.1,Alkhaldi Ali H.2,Abbas G.1,Shahzad M. R.3

Affiliation:

1. Department of Mathematics, The Islamia University of Bahawalpur, Bahawalpur, Pakistan

2. Department of Mathematics, College of Science, King Khalid University, 61413 Abha, Kingdom of Saudi Arabia

3. Department of Mathematics, Bahauddin Zakariya University, Multan Sub-Campus Vehari, Vehari 61100, Pakistan

Abstract

This paper investigates the new definition of complexity factor for the case of irrotational spherical relativistic structure in the Rastall theory of gravity (RTG). To do so, we assumed static spherically symmetric metric with anisotropic self-gravitating fluid. We studied Rastall field equations, generalized nonconservation equation, mass function and physical impacts of Rastall parameter [Formula: see text] on various material variables by employing certain observational data of compact objects like PSR J1614-2230, 4U1608-52, SAX J 1808.4-3658, 4U1820-30 and Vela X-1. We obtained structure scalars through orthogonal decomposition of the curvature tensor and then utilize these scalars to find the complexity factor of the self-gravitating spherical structure. We examined that the vanishing complexity factor condition is an effective energy density inhomogeneity and an effective anisotropy of pressure which must cancel each other, employed the condition [Formula: see text]. Moreover, we also depicted the solutions of interior formation of spherical stellar object regarding to this vanishing complexity condition. Finally, it is found that the complexity of the system enhances due to the presence of nonminimal to curvature matter couple parameter [Formula: see text]. It is very fascinating to report here that these outcomes could be recovered back to former solutions about complexity factor in General Relativity (GR) by imposing [Formula: see text].

Funder

deanship of scientific research

Publisher

World Scientific Pub Co Pte Ltd

Subject

Astronomy and Astrophysics,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

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