Repository logo
  • English
  • Italiano
Log In
Have you forgotten your password?
  1. Home
  2. PRODOTTI RICERCA INAF
  3. 1 CONTRIBUTI IN RIVISTE (Journal articles)
  4. 1.01 Articoli in rivista
  5. A long-period radio transient active for three decades
 

A long-period radio transient active for three decades

Journal
NATURE
Date Issued
2023
Author(s)
Hurley-Walker, N.
•
Rea, N.
•
McSweeney, S. J.
•
Meyers, B. W.
•
Lenc, E.
•
Heywood, I.
•
Hyman, S. D.
•
Men, Y. P.
•
Clarke, T. E.
•
Coti Zelati, F.
•
Price, D. C.
•
Horváth, C.
•
Galvin, T. J.
•
Anderson, G. E.
•
Bahramian, A.
•
Barr, E. D.
•
Bhat, N. D.R.
•
Caleb, M.
•
DALL'ORA, Massimo  
•
DE MARTINO, Domitilla  
•
Giacintucci, S.
•
Morgan, J. S.
•
Rajwade, K. M.
•
Stappers, B.
•
Williams, A.
DOI
10.1038/s41586-023-06202-5
Abstract
Several long-period radio transients have recently been discovered, with strongly polarized coherent radio pulses appearing on timescales between tens to thousands of seconds1,2. In some cases, the radio pulses have been interpreted as coming from rotating neutron stars with extremely strong magnetic fields, known as magnetars; the origin of other, occasionally periodic and less-well-sampled radio transients is still debated3. Coherent periodic radio emission is usually explained by rotating dipolar magnetic fields and pair-production mechanisms, but such models do not easily predict radio emission from such slowly rotating neutron stars and maintain it for extended times. On the other hand, highly magnetic isolated white dwarfs would be expected to have long spin periodicities, but periodic coherent radio emission has not yet been directly detected from these sources. Here we report observations of a long-period (21 min) radio transient, which we have labelled GPM J1839–10. The pulses vary in brightness by two orders of magnitude, last between 30 and 300 s and have quasiperiodic substructure. The observations prompted a search of radio archives and we found that the source has been repeating since at least 1988. The archival data enabled constraint of the period derivative to <3.6 × 10−13 s s−1, which is at the very limit of any classical theoretical model that predicts dipolar radio emission from an isolated neutron star.
Volume
619
Issue
7970
Start page
487
File(s)
Loading...
Thumbnail Image
Name

2503.08036v1.pdf

Description
Preprint
Size

2.9 MB

Format

Adobe PDF

Checksum (MD5)

a207164b6ba3ff14b0a2f505d8847c69

Loading...
Thumbnail Image
Name

s41586-023-06202-5.pdf

Description
[Administrators only]
Size

6.65 MB

Format

Adobe PDF

Checksum (MD5)

d4307e5d2ca293cedbca96972cc149b3

Explore By
  • Communities and Collection
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
Information and guides for authors
  • https://openaccess-info.inaf.it: all about open access in INAF
  • How to enter a product: guides to OA@INAF
  • The INAF Policy on Open Access
  • Downloadable documents and templates

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science

  • Privacy policy
  • End User Agreement
  • Send Feedback