Constraining the long-lived supramassive neutron stars by magnetar boosted kilonovae

Author:

Wang Hao1ORCID,Beniamini Paz234ORCID,Giannios Dimitrios1

Affiliation:

1. Department of Physics and Astronomy, Purdue University , 525 Northwestern Avenue, West Lafayette, IN 47907 , USA

2. Department of Natural Sciences, The Open University of Israel , PO Box 808, Ra’anana 4353701 , Israel

3. Astrophysics Research Center of the Open university (ARCO), The Open University of Israel , PO Box 808, Ra’anana 4353701 , Israel

4. Department of Physics, The George Washington University , 725 21st Street NW, Washington, DC 20052 , USA

Abstract

ABSTRACT Kilonovae are optical transients following the merger of neutron star binaries, which are powered by the r-process heating of merger ejecta. However, if a merger remnant is a long-lived supramassive neutron star supported by its uniform rotation, it will inject energy into the ejecta through spin-down power. The energy injection can boost the peak luminosity of a kilonova by many orders of magnitudes, thus significantly increasing the detectable volume. Therefore, even if such events are only a small fraction of the kilonova population, they could dominate the detection rates. However, after many years of optical sky surveys, no such event has been confirmed. In this work, we build a boosted kilonova model with rich physical details, including the description of the evolution and stability of a proto neutron star, and the energy absorption through X-ray photoionization. We simulate the observation prospects and find the only way to match the absence of detection is to limit the energy injection by the newly born magnetar to only a small fraction of the neutron star rotational energy, thus they should collapse soon after the merger. Our result indicates that most supramassive neutron stars resulting from binary neutron star mergers are short lived and they are likely to be rare in the Universe.

Funder

NSF

United States-Israel Binational Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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