Imaging Planet Formation Inside the Diffraction Limit

For decades, astronomers have used observations of mature planetary systems to constrain planet formation theories, beginning with our own solar system and now the thousands of known exoplanets. Recent advances in instrumentation have given us a direct view of some steps in the planet formation proc...

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Main Author: Sallum, Stephanie Elise
Other Authors: Eisner, Joshua A.
Language:en_US
Published: The University of Arizona. 2017
Subjects:
Online Access:http://hdl.handle.net/10150/625645
http://arizona.openrepository.com/arizona/handle/10150/625645
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6256452017-09-29T03:00:40Z Imaging Planet Formation Inside the Diffraction Limit Sallum, Stephanie Elise Sallum, Stephanie Elise Eisner, Joshua A. Eisner, Joshua A. Hinz, Philip M. Close, Laird M. Guyon, Olivier Barman, Travis S. Kratter, Kaitlin exoplanets high contrast imaging interferometry planet formation protoplanetary disks transition disks For decades, astronomers have used observations of mature planetary systems to constrain planet formation theories, beginning with our own solar system and now the thousands of known exoplanets. Recent advances in instrumentation have given us a direct view of some steps in the planet formation process, such as large-scale protostar and protoplanetary disk features and evolution. However, understanding the details of how planets accrete and interact with their environment requires direct observations of protoplanets themselves. Transition disks, protoplanetary disks with inner clearings that may be caused by forming planets, are the best targets for these studies. Their large distances, compared to the stars normally targeted for direct imaging of exoplanets, make protoplanet detection difficult and necessitate novel imaging techniques. In this dissertation, I describe the results of using non-redundant masking (NRM) to search for forming planets in transition disk clearings. I first present a data reduction pipeline that I wrote to this end, using example datasets and simulations to demonstrate reduction and imaging optimizations. I discuss two transition disk NRM case studies: T Cha and LkCa 15. In the case of T Cha, while we detect significant asymmetries, the data cannot be explained by orbiting companions. The fluxes and orbital motion of the LkCa 15 companion signals, however, can be naturally explained by protoplanets in the disk clearing. I use these datasets and simulated observations to illustrate the effects of scattered light from transition disk material on NRM protoplanet searches. I then demonstrate the utility of the dual-aperture Large Binocular Telescope Interferometer's NRM mode on the bright B[e] star MWC 349A. I discuss the implications of this work for planet formation studies as well as future prospects for NRM and related techniques on next generation instruments. 2017 text Electronic Dissertation http://hdl.handle.net/10150/625645 http://arizona.openrepository.com/arizona/handle/10150/625645 en_US Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona.
collection NDLTD
language en_US
sources NDLTD
topic exoplanets
high contrast imaging
interferometry
planet formation
protoplanetary disks
transition disks
spellingShingle exoplanets
high contrast imaging
interferometry
planet formation
protoplanetary disks
transition disks
Sallum, Stephanie Elise
Sallum, Stephanie Elise
Imaging Planet Formation Inside the Diffraction Limit
description For decades, astronomers have used observations of mature planetary systems to constrain planet formation theories, beginning with our own solar system and now the thousands of known exoplanets. Recent advances in instrumentation have given us a direct view of some steps in the planet formation process, such as large-scale protostar and protoplanetary disk features and evolution. However, understanding the details of how planets accrete and interact with their environment requires direct observations of protoplanets themselves. Transition disks, protoplanetary disks with inner clearings that may be caused by forming planets, are the best targets for these studies. Their large distances, compared to the stars normally targeted for direct imaging of exoplanets, make protoplanet detection difficult and necessitate novel imaging techniques. In this dissertation, I describe the results of using non-redundant masking (NRM) to search for forming planets in transition disk clearings. I first present a data reduction pipeline that I wrote to this end, using example datasets and simulations to demonstrate reduction and imaging optimizations. I discuss two transition disk NRM case studies: T Cha and LkCa 15. In the case of T Cha, while we detect significant asymmetries, the data cannot be explained by orbiting companions. The fluxes and orbital motion of the LkCa 15 companion signals, however, can be naturally explained by protoplanets in the disk clearing. I use these datasets and simulated observations to illustrate the effects of scattered light from transition disk material on NRM protoplanet searches. I then demonstrate the utility of the dual-aperture Large Binocular Telescope Interferometer's NRM mode on the bright B[e] star MWC 349A. I discuss the implications of this work for planet formation studies as well as future prospects for NRM and related techniques on next generation instruments.
author2 Eisner, Joshua A.
author_facet Eisner, Joshua A.
Sallum, Stephanie Elise
Sallum, Stephanie Elise
author Sallum, Stephanie Elise
Sallum, Stephanie Elise
author_sort Sallum, Stephanie Elise
title Imaging Planet Formation Inside the Diffraction Limit
title_short Imaging Planet Formation Inside the Diffraction Limit
title_full Imaging Planet Formation Inside the Diffraction Limit
title_fullStr Imaging Planet Formation Inside the Diffraction Limit
title_full_unstemmed Imaging Planet Formation Inside the Diffraction Limit
title_sort imaging planet formation inside the diffraction limit
publisher The University of Arizona.
publishDate 2017
url http://hdl.handle.net/10150/625645
http://arizona.openrepository.com/arizona/handle/10150/625645
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