Suppression of luminosity and mass-radius relation of highly magnetized white dwarfs
arXiv:2006.02449 · doi:10.1093/mnras/staa1575
Abstract
We explore the luminosity L of magnetized white dwarfs and its effect on the mass-radius relation. We self-consistently obtain the interface between the electron degenerate gas dominated inner core and the outer ideal gas surface layer or envelope by incorporating both the components of gas throughout the model white dwarf. This is obtained by solving the set of magnetostatic equilibrium, photon diffusion and mass conservation equations in the Newtonian framework, for different sets of luminosity and magnetic field. We appropriately use magnetic opacity, instead of Kramer's opacity, wherever required. We show that the Chandrasekhar-limit is retained, even at high luminosity upto about 10^{-2} solar luminosity but without magnetic field, if the temperature is set constant inside the interface. However there is an increased mass for large-radius white dwarfs, an effect of photon diffusion. Nevertheless, in the presence of strong magnetic fields, with central strength of about 10^{14} G, super-Chandrasekhar white dwarfs, with masses of about 1.9 solar mass, are obtained even when the temperature inside the interface is kept constant. Most interestingly, small-radius magnetic white dwarfs remain super-Chandrasekhar even if their luminosity decreases to as low as about 10^{-20} solar luminosity. However, their large-radius counterparts in the same mass-radius relation merge with Chandrasekhar's result at low L. Hence, we argue for the possibility of highly magnetized, low luminous super-Chandrasekhar mass white dwarfs which, owing to their faintness, can be practically hidden.
11 pages including 2 in Appendix, 8 figures including 3 in Appendix (total 9 eps files) and 3 tables (change in ordering figures w.r.to previous version); Accepted for publication in MNRAS
References in corpus (7)
- The type Ia supernova SNLS-03D3bb from a super-Chandrasekhar-mass white dwarf star
- New mass limit for white dwarfs: super-Chandrasekhar type Ia supernova as a new standard candle
- Strongly magnetized cold electron degenerate gas: Mass-radius relation of the magnetized white dwarf
- Maximum mass of stable magnetized highly super-Chandrasekhar white dwarfs: stable solutions with varying magnetic fields
- A possible evolutionary scenario of highly magnetized super-Chandrasekhar white dwarfs: progenitors of peculiar type Ia supernovae
- GRMHD formulation of highly super-Chandrasekhar magnetized white dwarfs: stable configurations of non-spherical white dwarfs
- Revised cosmological parameters after BICEP 2 and BOSS
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- Resolving dichotomy in compact objects through continuous gravitational waves observation
- Formation, Possible Detection and Consequences of Highly Magnetized Compact Stars
- Relativistic Landau quantization in non-uniform magnetic field and its applications to white dwarfs and quantum information
- Timescales for Detecting Magnetized White Dwarfs in Gravitational Wave Astronomy