A Redshifted Inner Disk Atmosphere and Transient Absorbers in the Ultra-Compact Neutron Star X-ray Binary 4U 1916-053
arXiv:2008.01083 · doi:10.3847/2041-8213/aba9de
Abstract
The very small accretion disks in ultra-compact X-ray binaries (UCXBs) are special laboratories in which to study disk accretion and outflows. We report on three sets of new (250 ks total) and archival (50 ks) Chandra/HETG observations of the "dipping" neutron-star X-ray binary 4U 1916053, which has an orbital period of ~minutes. We find that the bulk of the absorption in all three spectra originates in a disk atmosphere that is redshifted by , corresponding to the gravitational redshift at radius of . This shift is present in the strongest, most highly ionized lines (Si XIV and Fe XXVI), with a significance of 5. Absorption lines observed during dipping events (typically associated with the outermost disk) instead display no velocity shifts and serve as a local standard of rest, suggesting that the redshift is intrinsic to an inner disk atmosphere and not due to radial motion in the galaxy or a kick. In two spectra, there is also evidence of a more strongly redshifted component that would correspond to a disk atmosphere at ; this component is significant at the 3 level. Finally, in one spectrum, we find evidence of disk wind with a blue shift of . If real, this wind would require magnetic driving.
15 Pages, 6 Figures, Accepted to ApJ Letters
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Cited by in corpus (5)
- A deep, multi-epoch Chandra HETG study of the ionized outflow from NGC 4051
- Evidence of a non-conservative mass transfer in the ultra-compact X-ray source XB 1916-053
- A Spectroscopic Angle on Central Engine Size Scales in Accreting Neutron Stars
- Accretion disc winds in X-ray binaries
- A highly ionised outflow in the X-ray binary 4U 1624-49 detected with XRISM