English

Significantly super-Chandrasekhar mass-limit of white dwarfs in noncommutative geometry

General Relativity and Quantum Cosmology 2021-04-27 v3 High Energy Astrophysical Phenomena Solar and Stellar Astrophysics High Energy Physics - Theory

Abstract

Chandrasekhar made the startling discovery about nine decades back that the mass of compact object white dwarf has a limiting value, once nuclear fusion reactions stop therein. This is the Chandrasekhar mass-limit, which is 1.4M\sim1.4M_\odot for a non-rotating non-magnetized white dwarf. On approaching this limiting mass, a white dwarf is believed to spark off with an explosion called type Ia supernova, which is considered to be a standard candle. However, observations of several over-luminous, peculiar type Ia supernovae indicate that the Chandrasekhar mass-limit to be significantly larger. By considering noncommutativity among the components of position and momentum variables, hence uncertainty in their measurements, at the quantum scales, we show that the mass of white dwarfs could be significantly super-Chandrasekhar and thereby arrive at a new mass-limit 2.6M\sim 2.6M_\odot, explaining a possible origin of over-luminous peculiar type Ia supernovae. The idea of noncommutativity, apart from the Heisenberg's uncertainty principle, is there for quite sometime, without any observational proof however. Our finding offers a plausible astrophysical evidence of noncommutativity, arguing for a possible second standard candle, which has many far-reaching implications.

Keywords

Cite

@article{arxiv.1912.00900,
  title  = {Significantly super-Chandrasekhar mass-limit of white dwarfs in noncommutative geometry},
  author = {Surajit Kalita and Banibrata Mukhopadhyay and T. R. Govindarajan},
  journal= {arXiv preprint arXiv:1912.00900},
  year   = {2021}
}

Comments

19 pages including 1 figure; text is modified and references are updated: Accepted for publication in IJMPD