Future of Neutron Star Studies with Fast Radio Bursts
Abstract
:1. Introduction
2. Different Channels for Magnetar Formation
- Core collapse;
- NS-NS coalescence;
- NS-WD coalescence;
- WD-WD coalescence;
- Accretion induced collapse (AIC).
3. Properties of the Surrounding Medium
4. Very Short-Term Periodicity and Quasiperiodic Features
5. Spin Periods
6. Long-Term Periodicity
7. Fundamental Theories
7.1. Testing the Equivalence Principle
7.2. Measuring the Photon Mass Limits
8. Discussion
8.1. Intergalactic Medium and Baryonic Matter
8.2. Gravitational Lensing of FRBs
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AIC | Accretion-induced collapse |
BH | Black hole |
CBM | Circumburst medium |
CCSN | Core-collapse supernovae |
CMB | Cosmic microwave background |
DM | Dispersion measure |
FRB | Fast radio burst |
GR | General relativity |
GRB | Gamma-ray burst |
IGM | Intergalactic medium |
IGMF | Intergalactic magnetic fields |
ISM | Interstellar medium |
MW | Milky Way |
NS | Neutron star |
PSR | Radio pulsar |
PWN | Pulsar wind nebula |
RM | Rotation measure |
SGR | Soft gamma-ray repeater |
SNR | Supernova remnant |
WD | White dwarf |
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Popov, S.B.; Pshirkov, M.S. Future of Neutron Star Studies with Fast Radio Bursts. Particles 2023, 6, 451-469. https://doi.org/10.3390/particles6010025
Popov SB, Pshirkov MS. Future of Neutron Star Studies with Fast Radio Bursts. Particles. 2023; 6(1):451-469. https://doi.org/10.3390/particles6010025
Chicago/Turabian StylePopov, Sergei B., and Maxim S. Pshirkov. 2023. "Future of Neutron Star Studies with Fast Radio Bursts" Particles 6, no. 1: 451-469. https://doi.org/10.3390/particles6010025