Testing a scaling relation between coherent radio emission and physical parameters of hot magnetic stars

Author:

Das Barnali1ORCID,Chandra Poonam23ORCID,Shultz Matt E1,Leto Paolo4ORCID,Mikulášek Zdeněk5,Petit Véronique1ORCID,Wade Gregg A6

Affiliation:

1. Department of Physics and Astronomy, Bartol Research Institute, University of Delaware , 217 Sharp Lab, Newark, DE 19716, USA

2. National Centre for Radio Astrophysics, Tata Institute of Fundamental Research, Pune University Campus , Pune 411007, Maharashtra, India

3. National Radio Astronomy Observatory , 520 Edgemont Rd, Charlottesville, VA 22903, USA

4. INAF−Osservatorio Astrofisico di Catania , Via S. Sofia 78, I-95123 Catania, Italy

5. Department of Theoretical Physics and Astrophysics, Masaryk University , Kotlářská 2, CZ-616 00 Brno, Czech Republic

6. Department of Physics and Space Science, Royal Military College of Canada , PO Box 17000, Station Forces, Kingston, ON K7K 7B4, Canada

Abstract

ABSTRACT Coherent radio emission via electron cyclotron maser emission (ECME) from hot magnetic stars was discovered more than two decades ago, but the physical conditions that make the generation of ECME favourable remain uncertain. Only recently was an empirical relation, connecting ECME luminosity with the stellar magnetic field and temperature, proposed to explain what makes a hot magnetic star capable of producing ECME. This relation was, however, obtained with just 14 stars. Therefore, it is important to examine whether this relation is robust. With the aim of testing the robustness, we conducted radio observations of five hot magnetic stars. This led to the discovery of three more stars producing ECME. We find that the proposed scaling relation remains valid after the addition of the newly discovered stars. However, we discovered that the magnetic field and effective temperature correlate for Teff ≲ 16 kK (likely an artefact of the small sample size), rendering the proposed connection between ECME luminosity and Teff unreliable. By examining the empirical relation in light of the scaling law for incoherent radio emission, we arrive at the conclusion that both types of emission are powered by the same magnetospheric phenomenon. Like the incoherent emission, coherent radio emission is indifferent to Teff for late-B and A-type stars, but Teff appears to become important for early-B type stars, possibly due to higher absorption, or higher plasma density at the emission sites suppressing the production of the emission.

Funder

Department of Atomic Energy, Government of India

University of Delaware

National Science Foundation

Natural Sciences and Engineering Research Council of Canada

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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