On the Ultimate Fate of Massive Neutron Stars in an Ever Expanding Universe
- 1 IWR, University of Heidelberg, Heidelberg, Germany
Abstract
General theory of relativity predicts the central densities of massive neutron stars (-MANs) to be much larger than the nuclear density. In the absence of energy production, the lifetimes of MANs should be shorter that their low-mass counterparts. Yet neither black holes nor neutron stars, whose masses are between two and five solar masses have ever been observed. Also, it is not clear what happened to the old MANs that were created through the collapse of first generation of stars shortly after the Big Bang. In this article, it is argued that MANs must end as completely invisible objects, whose cores are made of incompressible quark-gluon-superfluids and that their effective masses must have doubled through the injection of dark energy by a universal scalar field at the background of supranuclear density. It turns out that recent glitch observations of pulsars and young neutron star systems and data from particle collisions at the LHC and RHIC are in line with the present scenario.
- Bromm, V. and Larson, R.B. (2004) Annual Review of Astronomy & Astrophysics, 42, Issue 1.
- Nassif, C. and Francisco do Santos, R. Cornell University Library, arXiv: astro-ph 1610.08334.
- Witten, E. (1984) Physical Review D, 30, Issue 2.
- Camenzind, M. (2007) Compact Objects in Astrophysics. Springer, Heidelberg.
- Hampel, M., Fischer, T., et al. (2012) APJ, 748, 70. https://doi.org/10.1088/0004-637X/748/1/70
- Shapiro, S.L. and Teukolsky, S.A. (1983) Black Holes, White Dwarfs and Neutron Stars. John Wiley & Sons, New York. https://doi.org/10.1002/9783527617661
- Espinoza, C.M., Lyne, A.G., Stappers, B.W. and Kramer, C. (2011) MNRAS, 414, 1679. https://doi.org/10.1111/j.1365-2966.2011.18503.x
- Hujeirat, A.A., (2017) Cornell University Library, arXiv: astro-ph 1708.02887.
- Hujeirat, A.A., (2017) Cornell University Library, arXiv: astro-ph 1710.04619.
- Hujeirat, A.A. (2012) MNRAS, 423, 2893.
- Baranghi, C. (2008) Physica D, 237, 2195. https://doi.org/10.1016/j.physd.2008.01.010
- Baggaley, A.W. and Laurie, J. (2014) Physical Review B, 89, Article ID: 014504. https://doi.org/10.1103/PhysRevB.89.014504
- Dix, O.M. and Zieve, R.J. (2014) Physical Review B, 90, Article ID: 144511.
- Hujeirat, A.A. and Thielemann, F-K. (2009) MNRAS, 400, 903. https://doi.org/10.1111/j.1365-2966.2009.15498.x
- Bingham, R., Shukla, P.K., Eliasson, B. and Stenflo, L. (2010) Journal of Plasma Physics, 76, Issue 2.
- Bechtel, S.E., Rooney, F.J. and Wang, Q. (2004) International Journal of Engineering Science, 42, 1987-1994.
- SAE (1990) Aerospace Information Report. SAE AIR 1168/1, 155.
- Glendenning, N. (2007) Special and General Relativity. Springer, Berlin. https://doi.org/10.1007/978-0-387-47109-9
- Nagle, J.L., Bearden, I.G. and Zajc, W.A. (2011) New Journal of Physics, 13, Article ID: 075004.
- Kerstin Avila, K., Moxey, D., et al. (2011) Science, 333, 192-196. https://doi.org/10.1126/science.1203223
- Bethke, S. (2007) Progress in Particle and Nuclear Physics, 58, 351-386.