volume 653 pages A88

Characterizing the morphology of the debris disk around the low-mass star GSC 07396-00759

C. Adam 1, 2
J. Olofsson 1, 2
Rob G. van Holstein 3, 4
Amelia Bayo 5
J. Milli 6
Anthony Boccaletti 7
Quentin Kral 7
C. Ginski 8
Matías Montesinos 2, 10
Nicole Pawellek 11, 12
Alice Zurlo 13, 14
M. Langlois 15, 16
A. Delboulbé 6
A. Pavlov A. Pavlov 6
J. C. Ramos 6
L Weber 17
F. Wildi 17
F. Rigal 8
Daniel T Gryko 13, 18
3
 
European Southern Observatory, Alonso de Córdova 3107, Casilla, 19001 Vitacura, Santiago, Chile
8
 
Anton Pannekoek Institute for Astronomy, Science Park 904, 1098 XH Amsterdam, The Netherlands
10
 
Escuela de Ciencias, Universidad Viña del Mar, Viña del Mar, Chile
Publication typeJournal Article
Publication date2021-07-25
scimago Q1
wos Q1
SJR1.968
CiteScore8.9
Impact factor5.8
ISSN00046361, 14320746, 23291273, 23291265
Space and Planetary Science
Astronomy and Astrophysics
Abstract

Context. Debris disks have commonly been studied around intermediate-mass stars. Their intense radiation fields are believed to efficiently remove the small dust grains that are constantly replenished by collisions. For lower-mass central objects, in particular M stars, the dust removal mechanism needs to be further investigated given the much weaker radiation field produced by these objects.

Aims. We present new observations of the nearly edge-on disk around the pre-main-sequence M-type star GSC 07396-00759, taken with VLT/SPHERE IRDIS in dual-beam polarimetric imaging mode, with the aim to better understand the morphology of the disk, its dust properties, and the star-disk interaction via the stellar mass-loss rate.

Methods. We model the polarimetric observations to characterize the location and properties of the dust grains using the Henyey–Greenstein approximation of the polarized phase function. We use the estimated phase function to evaluate the strength of the stellar winds.

Results. We find that the polarized light observations are best described by an extended and highly inclined disk (i ≈ 84.3 ° ± 0.3) with a dust distribution centered at a radius r0 ≈ 107 ± 2 au. Our modeling suggests an anisotropic scattering factor g ≈ 0.6 to best reproduce the polarized phase function S12. We also find that the phase function is reasonably well reproduced by small micron-sized dust grains with sizes s > 0.3μm. We discuss some of the caveats of the approach, mainly that our model probably does not fully recover the semimajor axis of the disk and that we cannot readily determine all dust properties due to a degeneracy between the grain size and the porosity.

Conclusions. Even though the radius of the disk may be overestimated, our best-fit model not only reproduces the observations well but is also consistent with previous published data obtained in total intensity. Similarly to previous studies of debris disks, we suggest that using a given scattering theory might not be sufficient to fully explain key aspects, such as the shape of the phase function or the dust grain size. Taking into consideration the aforementioned caveats, we find that the average mass-loss rate of GSC 07396-00759 can be up to 500 times stronger than that of the Sun, supporting the idea that stellar winds from low-mass stars can evacuate small dust grains in an efficient way.

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GOST Copy
Adam C. et al. Characterizing the morphology of the debris disk around the low-mass star GSC 07396-00759 // Astronomy and Astrophysics. 2021. Vol. 653. p. A88.
GOST all authors (up to 50) Copy
Adam C., Olofsson J., van Holstein R. G., Bayo A., Milli J., Boccaletti A., Kral Q., Ginski C., Henning T., Montesinos M., Pawellek N., Zurlo A., Langlois M., Delboulbé A., A. Pavlov A. P., Ramos J. C., Weber L., Wildi F., Rigal F., Gryko D. T. Characterizing the morphology of the debris disk around the low-mass star GSC 07396-00759 // Astronomy and Astrophysics. 2021. Vol. 653. p. A88.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1051/0004-6361/202140740
UR - https://doi.org/10.1051/0004-6361/202140740
TI - Characterizing the morphology of the debris disk around the low-mass star GSC 07396-00759
T2 - Astronomy and Astrophysics
AU - Adam, C.
AU - Olofsson, J.
AU - van Holstein, Rob G.
AU - Bayo, Amelia
AU - Milli, J.
AU - Boccaletti, Anthony
AU - Kral, Quentin
AU - Ginski, C.
AU - Henning, Thomas
AU - Montesinos, Matías
AU - Pawellek, Nicole
AU - Zurlo, Alice
AU - Langlois, M.
AU - Delboulbé, A.
AU - A. Pavlov, A. Pavlov
AU - Ramos, J. C.
AU - Weber, L
AU - Wildi, F.
AU - Rigal, F.
AU - Gryko, Daniel T
PY - 2021
DA - 2021/07/25
PB - EDP Sciences
SP - A88
VL - 653
SN - 0004-6361
SN - 1432-0746
SN - 2329-1273
SN - 2329-1265
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Adam,
author = {C. Adam and J. Olofsson and Rob G. van Holstein and Amelia Bayo and J. Milli and Anthony Boccaletti and Quentin Kral and C. Ginski and Thomas Henning and Matías Montesinos and Nicole Pawellek and Alice Zurlo and M. Langlois and A. Delboulbé and A. Pavlov A. Pavlov and J. C. Ramos and L Weber and F. Wildi and F. Rigal and Daniel T Gryko},
title = {Characterizing the morphology of the debris disk around the low-mass star GSC 07396-00759},
journal = {Astronomy and Astrophysics},
year = {2021},
volume = {653},
publisher = {EDP Sciences},
month = {jul},
url = {https://doi.org/10.1051/0004-6361/202140740},
pages = {A88},
doi = {10.1051/0004-6361/202140740}
}