Strongly magnetized cold electron degenerate gas: Mass-radius relation of the magnetized white dwarf
Upasana Das, Banibrata Mukhopadhyay

TL;DR
This paper investigates how strong magnetic fields affect the equation of state and mass-radius relation of white dwarfs, showing that magnetized white dwarfs can exceed the Chandrasekhar limit and align with recent supernova observations.
Contribution
It introduces a model for magnetized white dwarfs considering Landau quantization with few Landau levels, demonstrating the possibility of super-Chandrasekhar-mass white dwarfs.
Findings
Magnetic fields can increase white dwarf mass beyond Chandrasekhar limit.
White dwarfs with 2.3-2.6 solar masses are possible under strong magnetic fields.
Results align with observations of super-Chandrasekhar supernova progenitors.
Abstract
We consider a relativistic, degenerate electron gas at zero-temperature under the influence of a strong, uniform, static magnetic field, neglecting any form of interactions. Since the density of states for the electrons changes due to the presence of the magnetic field (which gives rise to Landau quantization), the corresponding equation of state also gets modified. In order to investigate the effect of very strong magnetic field, we focus only on systems in which a maximum of either one, two or three Landau level(s) is/are occupied. This is important since, if a very large number of Landau levels are filled, it implies a very low magnetic field strength which yields back Chandrasekhar's celebrated non-magnetic results. The maximum number of occupied Landau levels is fixed by the correct choice of two parameters, namely the magnetic field strength and the maximum Fermi energy of the…
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