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High-fidelity Imaging of the Inner AU Mic Debris Disk: Evidence of Differential Wind Sculpting?

Authors :
John P. Wisniewski
Adam F. Kowalski
James R. A. Davenport
Glenn Schneider
Carol A. Grady
Leslie Hebb
Kellen D. Lawson
Jean-Charles Augereau
Anthony Boccaletti
Alexander Brown
John H. Debes
Andras Gaspar
Thomas K. Henning
Dean C. Hines
Marc J. Kuchner
Anne-Marie Lagrange
Julien Milli
Elie Sezestre
Christopher C. Stark
Christian Thalmann
Source :
The Astrophysical Journal Letters. 883(1)
Publication Year :
2019
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2019.

Abstract

We present new high-fidelity optical coronagraphic imagery of the inner ∼50 au of AU Mic's edge-on debris disk using the BAR5 occulter of the Hubble Space Telescope Imaging Spectrograph (HST/STIS) obtained on 2018 July 26–27. This new imagery reveals that "feature A," residing at a projected stellocentric separation of 14.2 au on the southeast side of the disk, exhibits an apparent "loop-like" morphology at the time of our observations. The loop has a projected width of 1.5 au and rises 2.3 au above the disk midplane. We also explored Transiting Exoplanet Survey Satellite photometric observations of AU Mic that are consistent with evidence of two starspot complexes in the system. The likely co-alignment of the stellar and disk rotational axes breaks degeneracies in detailed spot modeling, indicating that AU Mic's projected magnetic field axis is offset from its rotational axis. We speculate that small grains in AU Mic's disk could be sculpted by a time-dependent wind that is influenced by this offset magnetic field axis, analogous to co-rotating solar interaction regions that sculpt and influence the inner and outer regions of our own Heliosphere. Alternatively, if the observed spot modulation is indicative of a significant misalignment of the stellar and disk rotational axes, we suggest that the disk could still be sculpted by the differential equatorial versus polar wind that it sees with every stellar rotation.

Subjects

Subjects :
Astrophysics

Details

Language :
English
ISSN :
20418213 and 20418205
Volume :
883
Issue :
1
Database :
NASA Technical Reports
Journal :
The Astrophysical Journal Letters
Notes :
399131, , STScI GO-15219, , NNG16PX45C, , NAS5-03127
Publication Type :
Report
Accession number :
edsnas.20210011053
Document Type :
Report
Full Text :
https://doi.org/10.3847/2041-8213/ab40bf