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Evidence of mutually exclusive outflow forms from a black hole X-ray binary

delete2026-01-05
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PRE
AI
Z
Zuobin Zhang
J
Jiachen Jiang
F
Francesco Carotenuto
H
Honghui Liu
C
Cosimo Bambi *
R
R. P. Fender
A
A. J. Young
J
Jakob van den Eijnden
C
C. S. Reynolds
A
A. C. Fabian
J
Julien N. Girard
J
Joey Neilsen
J
James F. Steiner
J
John A. Tomsick
S
S. Corbel
A
A.K. Hughes
DOI:10.1038/s41550-025-02753-xdelete
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Abstract

Abstract

En 中文
Accretion onto black holes often leads to the launch of outflows that substantially influence their surrounding environments. The two primary forms of these outflows are X-ray disk winds—hot, ionized gases ejected from the accretion disk—and relativistic jets, which are collimated streams of particles often expelled along the rotational axis of the black hole. While previous studies have revealed a general association between spectral states and different types of outflow, the physical mechanisms governing wind and jet formation remain debated. Here, using coordinated NICER and MeerKAT observations of the recurrent black hole X-ray binary 4U 1630–472, we identify a clear anti-correlation between X-ray disk winds and jets: during three recent outbursts, only one type of outflow is detected at a time. Notably, this apparent exclusivity occurs even as the overall accretion luminosity remains within the range expected for a standard thin disk, characteristic of the canonical soft state. These results suggest a competition between outflow channels that may depend on how the accretion energy is partitioned between the disk and the corona. Our findings provide observational constraints on jet and wind formation in X-ray binaries and offer a fresh perspective on the interplay between different modes of accretion-driven feedback. Coordinated X-ray and radio observations reveal that disk winds and jets occur mutually exclusively in 4U 1630–472, providing new observational constraints on the interplay between different modes of outflow in X-ray binaries.
Keywords:
disk winds
relativistic jets
black hole X-ray binary
accretion feedback
spectral states

Journal

Nature Astronomy cover
Nature Astronomy
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14.3
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