Change search
Link to record
Permanent link

Direct link
Publications (4 of 4) Show all publications
Olofsson, J., Milli, J., Thebault, P., Kral, Q., Menard, F., Janson, M., . . . Zurlo, A. (2019). Dust production in the debris disk around HR4796 A. Astronomy and Astrophysics, 630, Article ID A142.
Open this publication in new window or tab >>Dust production in the debris disk around HR4796 A
Show others...
2019 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 630, article id A142Article in journal (Refereed) Published
Abstract [en]

Context. Debris disks are the natural by-products of the planet formation process. Scattered or polarized light observations are mostly sensitive to small dust grains that are released from the grinding down of bigger planetesimals.

Aims. High angular resolution observations at optical wavelengths can provide key constraints on the radial and azimuthal distribution of the small dust grains. These constraints can help us better understand where most of the dust grains are released upon collisions.

Methods. We present SPHERE/ZIMPOL observations of the debris disk around HR4796A, and we modeled the radial profiles along several azimuthal angles of the disk with a code that accounts for the effect of stellar radiation pressure. This enabled us to derive an appropriate description for the radial and azimuthal distribution of the small dust grains.

Results. Even though we only modeled the radial profiles along, or close to, the semi-major axis of the disk, our best-fit model is not only in good agreement with our observations but also with previously published datasets (from near-infrared to sub-mm wavelengths). We find that the reference radius is located at 76.4 +/- 0.4 au, and the disk has an eccentricity of 0.076(-0.010)(+0.016) with the pericenter located on the front side of the disk (north of the star). We find that small dust grains must be preferentially released near the pericenter to explain the observed brightness asymmetry.

Conclusions. Even though parent bodies spend more time near the apocenter, the brightness asymmetry implies that collisions happen more frequently near the pericenter of the disk. Our model can successfully reproduce the shape of the outer edge of the disk without requiring an outer planet shaping the debris disk. With a simple treatment for the effect of the radiation pressure, we conclude that the parent planetesimals are located in a narrow ring of about 3.6 au in width.

Keywords
circumstellar matter, techniques: high angular resolution
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-180680 (URN)10.1051/0004-6361/201935998 (DOI)000516618100002 ()
Available from: 2020-04-06 Created: 2020-04-06 Last updated: 2022-02-26Bibliographically approved
Rigliaco, E., Gratton, R., Mesa, D., D'Orazi, V., Bonnefoy, M., Alcalà, J. M., . . . Weber, L. (2019). Investigating the nature of the extended structure around the Herbig star RCrA using integral field and high-resolution spectroscopy. Astronomy and Astrophysics, 632, Article ID A18.
Open this publication in new window or tab >>Investigating the nature of the extended structure around the Herbig star RCrA using integral field and high-resolution spectroscopy
Show others...
2019 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 632, article id A18Article in journal (Refereed) Published
Abstract [en]

Context. We present a detailed analysis of the extended structure detected around the young and close-by Herbig Ae/Be star R CrA. This is a young triple system with an intermediate mass central binary whose separation is of the order of a few tens of the radii of the individual components, and an M-star companion at about 30 au.

Aims. Our aim is to understand the nature of the extended structure by means of combining integral-field and high-resolution spectroscopy.

Methods. We conducted the analysis based on FEROS archival optical spectroscopy data and adaptive optics images and integral-field spectra obtained with SINFONI and SPHERE at the VLT.

Results. The observations reveal a complex extended structure that is composed of at least two components: a non-uniform wide cavity whose walls are detected in continuum emission up to 400 au, and a collimated wiggling-jet detected in the emission lines of helium and hydrogen. Moreover, the presence of [Fe II] emission projected close to the cavity walls suggests the presence of a slower moving wind, most likely a disk wind. The multiple components of the optical forbidden lines also indicate the presence of a high-velocity jet co-existing with a slow wind. We constructed a geometrical model of the collimated jet flowing within the cavity using intensity and velocity maps, finding that its wiggling is consistent with the orbital period of the central binary. The cavity and the jet do not share the same position angle, suggesting that the jet is itself experiencing a precession motion possibly due to the wide M-dwarf companion.

Conclusions. We propose a scenario that closely agrees with the general expectation of a magneto-centrifugal-launched jet. These results build upon the extensive studies already conducted on R CrA.

Keywords
stars: pre-main sequence, protoplanetary disks, Herbig-Haro objects, ISM: jets and outflows, ISM: individual objects: R CrA
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-180679 (URN)10.1051/0004-6361/201936707 (DOI)000515109600001 ()
Available from: 2020-04-06 Created: 2020-04-06 Last updated: 2022-02-26Bibliographically approved
Peretti, S., Segransan, D., Lavie, B., Desidera, S., Maire, A.-L., D'Orazi, V., . . . Wildi, F. (2019). Orbital and spectral analysis of the benchmark brown dwarf HD 4747B. Astronomy and Astrophysics, 631, Article ID A107.
Open this publication in new window or tab >>Orbital and spectral analysis of the benchmark brown dwarf HD 4747B
Show others...
2019 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 631, article id A107Article in journal (Refereed) Published
Abstract [en]

Context. The study of high-contrast imaged brown dwarfs and exoplanets depends strongly on evolutionary models. To estimate the mass of a directly imaged substellar object, its extracted photometry or spectrum is used and adjusted with model spectra together with the estimated age of the system. These models still need to be properly tested and constrained. HD 4747B is a brown dwarf close to the H burning mass limit, orbiting a nearby (d = 19.25 +/- 0.58 pc), solar-type star (G9V); it has been observed with the radial velocity method for over almost two decades. Its companion was also recently detected by direct imaging, allowing a complete study of this particular object.

Aims. We aim to fully characterize HD 4747B by combining a well-constrained dynamical mass and a study of its observed spectral features in order to test evolutionary models for substellar objects and to characterize its atmosphere.

Methods. We combined the radial velocity measurements of High Resolution Echelle Spectrometer (HIRES) and CORALIE taken over two decades and high-contrast imaging of several epochs from NACO, NIRC2, and SPHERE to obtain a dynamical mass. From the SPHERE data we obtained a low-resolution spectrum of the companion from Y to H band, and two narrow band-width photometric measurements in the K band. A study of the primary star also allowed us to constrain the age of the system and its distance.

Results. Thanks to the new SPHERE epoch and NACO archival data combined with previous imaging data and high-precision radial velocity measurements, we were able to derive a well-constrained orbit. The high eccentricity (e = 0.7362 +/- 0.0025) of HD 4747B is confirmed, and the inclination and the semi-major axis are derived (i = 47.3 +/- 1.6 degrees, a = 10.01 +/- 0.21 au). We derive a dynamical mass of m(B) = 70.0 +/- 1.6 M-Jup, which is higher than a previous study but in better agreement with the models. By comparing the object with known brown dwarfs spectra, we derive a spectral type of L9 and an effective temperature of 1350 +/- 50 K. With a retrieval analysis we constrain the oxygen and carbon abundances and compare them with the values from the HR 8799 planets.

Keywords
binaries: general, binaries: spectroscopic, binaries: visual, brown dwarfs, planets and satellites: atmospheres, techniques: high angular resolution
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-180673 (URN)10.1051/0004-6361/201732454 (DOI)000515095800001 ()
Available from: 2020-04-06 Created: 2020-04-06 Last updated: 2022-02-26Bibliographically approved
Mesa, D., Keppler, M., Cantalloube, F., Rodet, L., Charnay, B., Gratton, R., . . . Wildi, F. (2019). VLT/SPHERE exploration of the young multiplanetary system PDS70. Astronomy and Astrophysics, 632, Article ID A25.
Open this publication in new window or tab >>VLT/SPHERE exploration of the young multiplanetary system PDS70
Show others...
2019 (English)In: Astronomy and Astrophysics, ISSN 0004-6361, E-ISSN 1432-0746, Vol. 632, article id A25Article in journal (Refereed) Published
Abstract [en]

Context. PDS 70 is a young (5.4 Myr), nearby (similar to 113 pc) star hosting a known transition disk with a large gap. Recent observations with SPHERE and NACO in the near-infrared (NIR) allowed us to detect a planetary mass companion, PDS 70 b, within the disk cavity. Moreover, observations in H-alpha with MagAO and MUSE revealed emission associated to PDS 70 b and to another new companion candidate, PDS 70 c, at a larger separation from the star. PDS 70 is the only multiple planetary system at its formation stage detected so far through direct imaging.

Aims. Our aim is to confirm the discovery of the second planet PDS 70 c using SPHERE at VLT, to further characterize its physical properties, and search for additional point sources in this young planetary system.

Methods. We re-analyzed archival SPHERE NIR observations and obtained new data in Y, J, H and K spectral bands for a total of four different epochs. The data were reduced using the data reduction and handling pipeline and the SPHERE data center. We then applied custom routines (e.g., ANDROMEDA and PACO) to subtract the starlight.

Results. We re-detect both PDS 70 b and c and confirm that PDS 70 c is gravitationally bound to the star. We estimate this second planet to be less massive than 5 M-Jup and with a T-eff around 900 K. Also, it has a low gravity with log g between 3.0 and 3.5 dex. In addition, a third object has been identified at short separation (similar to 0.12 '') from the star and gravitationally bound to the star. Its spectrum is however very blue, meaning that we are probably seeing stellar light reflected by dust and our analysis seems to demonstrate that it is a feature of the inner disk. We cannot however completely exclude the possibility that it is a planetary mass object enshrouded by a dust envelope. In this latter case, its mass should be of the order of a few tens of M-circle plus. Moreover, we propose a possible structure for the planetary system based on our data, and find that this structure cannot be stable on a long timescale.

Keywords
instrumentation: spectrographs, methods: data analysis, techniques: imaging spectroscopy, planetary systems, stars: individual: PDS70
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-180678 (URN)10.1051/0004-6361/201936764 (DOI)000515111200001 ()
Available from: 2020-04-06 Created: 2020-04-06 Last updated: 2022-02-26Bibliographically approved
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-5903-8316

Search in DiVA

Show all publications