Testing afterglow models of FRB 200428 with early post-burst observations of SGR 1935 + 2154

Author:

Cooper A J12ORCID,Rowlinson A12ORCID,Wijers R A M J1ORCID,Bassa C2ORCID,Gourdji K3ORCID,Hessels J12,van der Horst A J4,Kondratiev V2,Michilli D5,Pleunis Z6,Shimwell T27,ter Veen S2

Affiliation:

1. Anton Pannekoek Institute, University of Amsterdam , Postbus 94249, 1090 GE Amsterdam, the Netherlands

2. ASTRON, The Netherlands Institute for Radio Astronomy , Oude Hoogeveensedijk 4, 7991 PD, Dwingeloo, the Netherlands

3. Centre for Astrophysics and Supercomputing, Swinburne University of Technology , Hawthorn VIC 3122, Australia

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

5. MIT Kavli Institute for Astrophysics and Space Research , 77 Massachusetts Ave, Massachusetts Institute of Technology, Cambridge, MA 02139, USA

6. Dunlap Institute for Astronomy & Astrophysics, University of Toronto , 50 St. George Street, Toronto, ON M5S 3H4, Canada

7. Leiden Observatory, Leiden University , P.O. Box 9513, 2300 RA Leiden, the Netherlands

Abstract

ABSTRACT We present LOFAR imaging observations from the April/May 2020 active episode of magnetar SGR 1935 + 2154. We place the earliest radio limits on persistent emission following the low-luminosity fast radio burst FRB 200428 from the magnetar. We also perform an image-plane search for transient emission and find no radio flares during our observations. We examine post-FRB radio upper limits in the literature and find that all are consistent with the multiwavelength afterglow predicted by the synchrotron maser shock model interpretation of FRB 200428. However, early optical observations appear to rule out the simple versions of the afterglow model with constant-density circumburst media. We show that these constraints may be mitigated by adapting the model for a wind-like environment, but only for a limited parameter range. In addition, we suggest that late-time non-thermal particle acceleration occurs within the afterglow model when the shock is no longer relativistic, which may prove vital for detecting afterglows from other Galactic FRBs. We also discuss future observing strategies for verifying either magnetospheric or maser shock FRB models via rapid radio observations of Galactic magnetars and nearby FRBs.

Funder

International LOFAR Telescope

CNRS

BMBF

MIWF-NRW

MPG

Science Foundation Ireland

Department of Jobs, Enterprise and Innovation

NWO

Science and Technology Facilities Council

Ministry of Science and Higher Education

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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