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A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY

Until recently, none of the ~750,000 known asteroids and comets were thought to have originated outside our solar system. Many decades of asteroid and comet characterization have yielded formation scenarios that explain the mass distribution, chemical abundances and planetary configuration of today’...

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Autores principales: Meech, Karen J., Weryk, Robert, Micheli, Marco, Kleyna, Jan T., Hainaut, Olivier R., Jedicke, Robert, Wainscoat, Richard J., Chambers, Kenneth C., Keane, Jacqueline V., Petric, Andreea, Denneau, Larry, Magnier, Eugene, Berger, Travis, Huber, Mark E., Flewelling, Heather, Waters, Chris, Schunova-Lilly, Eva, Chastel, Serge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8979573/
https://www.ncbi.nlm.nih.gov/pubmed/29160305
http://dx.doi.org/10.1038/nature25020
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author Meech, Karen J.
Weryk, Robert
Micheli, Marco
Kleyna, Jan T.
Hainaut, Olivier R.
Jedicke, Robert
Wainscoat, Richard J.
Chambers, Kenneth C.
Keane, Jacqueline V.
Petric, Andreea
Denneau, Larry
Magnier, Eugene
Berger, Travis
Huber, Mark E.
Flewelling, Heather
Waters, Chris
Schunova-Lilly, Eva
Chastel, Serge
author_facet Meech, Karen J.
Weryk, Robert
Micheli, Marco
Kleyna, Jan T.
Hainaut, Olivier R.
Jedicke, Robert
Wainscoat, Richard J.
Chambers, Kenneth C.
Keane, Jacqueline V.
Petric, Andreea
Denneau, Larry
Magnier, Eugene
Berger, Travis
Huber, Mark E.
Flewelling, Heather
Waters, Chris
Schunova-Lilly, Eva
Chastel, Serge
author_sort Meech, Karen J.
collection PubMed
description Until recently, none of the ~750,000 known asteroids and comets were thought to have originated outside our solar system. Many decades of asteroid and comet characterization have yielded formation scenarios that explain the mass distribution, chemical abundances and planetary configuration of today’s solar system, but up until now there has been no way to tell if our solar system is typical. Solar system formation models suggest that orbital migration of the giant planets as they formed ejected a large fraction of the original planetesimals into interstellar space(1). The predicted interstellar number density(2) of icy interstellar objects of 2.4 × 10(−4) au(−3) suggested that these should have been detected by surveys, yet none had ever been seen. Here we report on the discovery and characterization of 1I/2017 U1 (‘Oumuamua), the first object known to originate outside our solar system. Follow-up observations and subsequent analysis verified the extrasolar trajectory of ‘Oumuamua. Our observations reveal the object to be asteroidal, with no hint of cometary activity despite an approach within 0.25 au of the Sun. Spectroscopic measurements show that the object’s surface is consistent with comets or organic-rich asteroid surfaces found in our own solar system. Light-curve observations of ‘Oumuamua indicate that the object has an extreme oblong shape, with a 10:1 axis ratio and a mean radius of 102±4 m assuming an albedo of 0.04. Very few objects in our solar system have such an extreme lightcurve. The discovery of ‘Oumuamua suggests that previous estimates of the density of interstellar objects were pessimistically low. Imminent upgrades to contemporary asteroid survey instruments and improved data processing techniques are likely to produce more interstellar objects in the upcoming years, creating opportunities to interrogate the mineralogical, elemental or isotopic composition of material from other solar systems.
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spelling pubmed-89795732022-04-04 A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY Meech, Karen J. Weryk, Robert Micheli, Marco Kleyna, Jan T. Hainaut, Olivier R. Jedicke, Robert Wainscoat, Richard J. Chambers, Kenneth C. Keane, Jacqueline V. Petric, Andreea Denneau, Larry Magnier, Eugene Berger, Travis Huber, Mark E. Flewelling, Heather Waters, Chris Schunova-Lilly, Eva Chastel, Serge Nature Article Until recently, none of the ~750,000 known asteroids and comets were thought to have originated outside our solar system. Many decades of asteroid and comet characterization have yielded formation scenarios that explain the mass distribution, chemical abundances and planetary configuration of today’s solar system, but up until now there has been no way to tell if our solar system is typical. Solar system formation models suggest that orbital migration of the giant planets as they formed ejected a large fraction of the original planetesimals into interstellar space(1). The predicted interstellar number density(2) of icy interstellar objects of 2.4 × 10(−4) au(−3) suggested that these should have been detected by surveys, yet none had ever been seen. Here we report on the discovery and characterization of 1I/2017 U1 (‘Oumuamua), the first object known to originate outside our solar system. Follow-up observations and subsequent analysis verified the extrasolar trajectory of ‘Oumuamua. Our observations reveal the object to be asteroidal, with no hint of cometary activity despite an approach within 0.25 au of the Sun. Spectroscopic measurements show that the object’s surface is consistent with comets or organic-rich asteroid surfaces found in our own solar system. Light-curve observations of ‘Oumuamua indicate that the object has an extreme oblong shape, with a 10:1 axis ratio and a mean radius of 102±4 m assuming an albedo of 0.04. Very few objects in our solar system have such an extreme lightcurve. The discovery of ‘Oumuamua suggests that previous estimates of the density of interstellar objects were pessimistically low. Imminent upgrades to contemporary asteroid survey instruments and improved data processing techniques are likely to produce more interstellar objects in the upcoming years, creating opportunities to interrogate the mineralogical, elemental or isotopic composition of material from other solar systems. 2017-12-21 2017-11-20 /pmc/articles/PMC8979573/ /pubmed/29160305 http://dx.doi.org/10.1038/nature25020 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms Reprints and permissions information is available at www.nature.com/reprints
spellingShingle Article
Meech, Karen J.
Weryk, Robert
Micheli, Marco
Kleyna, Jan T.
Hainaut, Olivier R.
Jedicke, Robert
Wainscoat, Richard J.
Chambers, Kenneth C.
Keane, Jacqueline V.
Petric, Andreea
Denneau, Larry
Magnier, Eugene
Berger, Travis
Huber, Mark E.
Flewelling, Heather
Waters, Chris
Schunova-Lilly, Eva
Chastel, Serge
A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title_full A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title_fullStr A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title_full_unstemmed A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title_short A BRIEF VISIT FROM THE FIRST INTERSTELLAR ASTEROID REVEALS A RED EXTREMELY ELONGATED BODY
title_sort brief visit from the first interstellar asteroid reveals a red extremely elongated body
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8979573/
https://www.ncbi.nlm.nih.gov/pubmed/29160305
http://dx.doi.org/10.1038/nature25020
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