Axions from neutron star mergers

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Axions from neutron star mergers. / Fiorillo, Damiano F. G.; Iocco, Fabio.

I: Physical Review D, Bind 105, Nr. 12, 123007, 10.06.2022.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Fiorillo, DFG & Iocco, F 2022, 'Axions from neutron star mergers', Physical Review D, bind 105, nr. 12, 123007. https://doi.org/10.1103/PhysRevD.105.123007

APA

Fiorillo, D. F. G., & Iocco, F. (2022). Axions from neutron star mergers. Physical Review D, 105(12), [123007]. https://doi.org/10.1103/PhysRevD.105.123007

Vancouver

Fiorillo DFG, Iocco F. Axions from neutron star mergers. Physical Review D. 2022 jun. 10;105(12). 123007. https://doi.org/10.1103/PhysRevD.105.123007

Author

Fiorillo, Damiano F. G. ; Iocco, Fabio. / Axions from neutron star mergers. I: Physical Review D. 2022 ; Bind 105, Nr. 12.

Bibtex

@article{a3a9ac0db97f4ab2b8fc0230d6afb2f3,
title = "Axions from neutron star mergers",
abstract = "Axionlike particles (ALPs) can in principle be produced in very hot and dense astrophysical environments, escape from the extreme object where such conditions are met, and then be converted in gamma rays in the magnetic fields intervening between the event and the Earth. This process potentially offers a new window on both the physics of the axions, and the inner working of the astrophysical objects where they are produced. Interestingly, while this process has been studied for core-collapse supernovae and other extreme astrophysical events, no estimate exists for neutron star mergers, objects recently identified through the detection of gravitational waves. In this work we study the production of ALPs in neutron star mergers, finding that for a large region of the ALP parameter space its magnitude at the source is such to produce a sizable gamma-ray signal at Earth. We show detection forecasts for such events placed in nearby galaxies, finding that they are potentially observable with the Fermi-LAT, thus opening a new window into both the astrophysics of these cataclysmic events, and of new particles beyond the standard model.",
keywords = "NUCLEON-NUCLEON, SN 1987A, EMISSION, SN-1987A",
author = "Fiorillo, {Damiano F. G.} and Fabio Iocco",
year = "2022",
month = jun,
day = "10",
doi = "10.1103/PhysRevD.105.123007",
language = "English",
volume = "105",
journal = "Physical Review D",
issn = "2470-0010",
publisher = "American Physical Society",
number = "12",

}

RIS

TY - JOUR

T1 - Axions from neutron star mergers

AU - Fiorillo, Damiano F. G.

AU - Iocco, Fabio

PY - 2022/6/10

Y1 - 2022/6/10

N2 - Axionlike particles (ALPs) can in principle be produced in very hot and dense astrophysical environments, escape from the extreme object where such conditions are met, and then be converted in gamma rays in the magnetic fields intervening between the event and the Earth. This process potentially offers a new window on both the physics of the axions, and the inner working of the astrophysical objects where they are produced. Interestingly, while this process has been studied for core-collapse supernovae and other extreme astrophysical events, no estimate exists for neutron star mergers, objects recently identified through the detection of gravitational waves. In this work we study the production of ALPs in neutron star mergers, finding that for a large region of the ALP parameter space its magnitude at the source is such to produce a sizable gamma-ray signal at Earth. We show detection forecasts for such events placed in nearby galaxies, finding that they are potentially observable with the Fermi-LAT, thus opening a new window into both the astrophysics of these cataclysmic events, and of new particles beyond the standard model.

AB - Axionlike particles (ALPs) can in principle be produced in very hot and dense astrophysical environments, escape from the extreme object where such conditions are met, and then be converted in gamma rays in the magnetic fields intervening between the event and the Earth. This process potentially offers a new window on both the physics of the axions, and the inner working of the astrophysical objects where they are produced. Interestingly, while this process has been studied for core-collapse supernovae and other extreme astrophysical events, no estimate exists for neutron star mergers, objects recently identified through the detection of gravitational waves. In this work we study the production of ALPs in neutron star mergers, finding that for a large region of the ALP parameter space its magnitude at the source is such to produce a sizable gamma-ray signal at Earth. We show detection forecasts for such events placed in nearby galaxies, finding that they are potentially observable with the Fermi-LAT, thus opening a new window into both the astrophysics of these cataclysmic events, and of new particles beyond the standard model.

KW - NUCLEON-NUCLEON

KW - SN 1987A

KW - EMISSION

KW - SN-1987A

U2 - 10.1103/PhysRevD.105.123007

DO - 10.1103/PhysRevD.105.123007

M3 - Journal article

VL - 105

JO - Physical Review D

JF - Physical Review D

SN - 2470-0010

IS - 12

M1 - 123007

ER -

ID: 315469532