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High-temporal-resolution optical spectroscopic observations of the transitional millisecond pulsar PSR J1023+0038

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arxiv 2409.12893 v1 pith:K3T2Q75E submitted 2024-09-19 astro-ph.HE

High-temporal-resolution optical spectroscopic observations of the transitional millisecond pulsar PSR J1023+0038

classification astro-ph.HE
keywords opticalspectroscopicemissionmillisecondobservationsvariabilitycampaigncontinuum
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Transitional millisecond pulsars (tMSPs) represent a dynamic category of celestial sources that establish a crucial connection between low-mass X-ray binaries and millisecond radio pulsars. These systems exhibit transitions from rotation-powered states to accretion-powered ones and vice versa, highlighting the tight evolutionary link expected by the so-called recycling scenario. In their active phase, these sources manifest two distinct emission modes named high and low, occasionally punctuated by sporadic flares. Here, we present high-time-resolution spectroscopic observations of the binary tMSP J1023+0038, in the sub-luminous disc state. This is the first short-timescale (~ 1 min) optical spectroscopic campaign ever conducted on a tMSP. The campaign was carried out over the night of June 10, 2021 using the Gran Telescopio Canarias. The optical continuum shows erratic variability, without clear evidence of high and low modes or of orbital modulation. Besides, the analysis of these high-temporal-cadence spectroscopic observations reveals, for the first time, evidence for a significant (up to a factor of ~ 2) variability in the emission line properties (equivalent width and full width half maximum) over a timescale of minutes. Intriguingly, the variability episodes observed in the optical continuum and in the emission line properties seem uncorrelated, making their origin unclear.

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  1. Fast optical spectroscopic observations of PSR J1023+0038 over one orbital period

    astro-ph.HE 2026-07 accept novelty 6.0

    Full-orbit minute-cadence optical spectroscopy of PSR J1023+0038 reveals short-timescale line variability and asymmetric Doppler maps consistent with outflows.