paper

Revealing the nature of the transient source MAXI J0637-430 through spectro-temporal analysis

arXiv:2109.08374 · doi:10.1093/mnras/stab2719

Abstract

We study the spectral and temporal properties of MAXI J0637-430 during its 2019-2020 outburst using \textit{NICER}, \textit{AstroSat} and \textit{Swift-XRT} data. The source was in a disc dominant state within a day of its detection and traces out a `c' shaped profile in the HID, similar to the `mini'-outbursts of the recurrent BHB 4U 1630-472. Energy spectrum is obtained in the keV band with \textit{NICER} and \textit{Swift-XRT}, and keV with \textit{AstroSat}. The spectra can be modelled using a multicolour disc emission (\textit{diskbb}) convolved with a thermal Comptonisation component (\textit{thcomp}). The disc temperature decreases from 0.6 keV to 0.1 keV during the decay with a corresponding decrease in photon index () from 4.6 to 1.8. The fraction of Compton scattered photons () remains 0.3 during the decay upto mid-January 2020 and gradually increases to 1 as the source reaches hard state. Power Density Spectra (PDS) generated in the 0.01-100 Hz range display no Quasi-periodic Oscillations (QPOs) although band-limited noise (BLN) is seen towards the end of January 2020. During \textit{AstroSat} observations, lies in the range and rms increases from 11 to 20\%, suggesting that the source was in an intermediate state till 21 November 2019. Spectral fitting with the relativistic disc model (\textit{kerrbb}), in conjunction with the soft-hard transition luminosity, favour a black hole with mass with retrograde spin at a distance kpc. Finally, we discuss the possible implications of our findings.

References updated, final version

References in corpus (10)

Cited by in corpus (3)

Revealing the nature of the transient source MAXI J0637-430 through spectro-temporal analysis · wovepaper