Effect of minimal length uncertainty on the mass-radius relation of white dwarfs
Arun Mathew, Malay K. Nandy

TL;DR
This paper investigates how a minimal length scale from quantum gravity modifies the mass-radius relation of white dwarfs, revealing that the Chandrasekhar limit is affected and approaching different mass and radius values depending on the constraints.
Contribution
It provides a detailed analysis of the impact of generalized uncertainty principles on white dwarf structure, considering realistic physical restrictions.
Findings
Mass approaches ~1.45 M_sun near upper bound of beta.
Radius approaches ~600 km near the upper bound.
Mass and radius vary with beta, approaching ~1.46 M_sun and 650 km.
Abstract
Generalized uncertainty relation that carries the imprint of quantum gravity introduces a minimal length scale into the description of space-time. It effectively changes the invariant measure of the phase space through a factor so that the equation of state for an electron gas undergoes a significant modification from the ideal case. It has been shown in the literature (Rashidi 2016) that the ideal Chandrasekhar limit ceases to exist when the modified equation of state due to the generalized uncertainty is taken into account. To assess the situation in a more complete fashion, we analyze in detail the mass-radius relation of Newtonian white dwarfs whose hydrostatic equilibria are governed by the equation of state of the degenerate relativistic electron gas subjected to the generalized uncertainty principle. As the constraint of minimal length imposes a…
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