Literature DB >> 27582221

Aggregate dust particles at comet 67P/Churyumov-Gerasimenko.

Mark S Bentley1, Roland Schmied1, Thurid Mannel1,2, Klaus Torkar1, Harald Jeszenszky1, Jens Romstedt3, Anny-Chantal Levasseur-Regourd4, Iris Weber5, Elmar K Jessberger5, Pascale Ehrenfreund6,7, Christian Koeberl8,9, Ove Havnes10.   

Abstract

Comets are thought to preserve almost pristine dust particles, thus providing a unique sample of the properties of the early solar nebula. The microscopic properties of this dust played a key part in particle aggregation during the formation of the Solar System. Cometary dust was previously considered to comprise irregular, fluffy agglomerates on the basis of interpretations of remote observations in the visible and infrared and the study of chondritic porous interplanetary dust particles that were thought, but not proved, to originate in comets. Although the dust returned by an earlier mission has provided detailed mineralogy of particles from comet 81P/Wild, the fine-grained aggregate component was strongly modified during collection. Here we report in situ measurements of dust particles at comet 67P/Churyumov-Gerasimenko. The particles are aggregates of smaller, elongated grains, with structures at distinct sizes indicating hierarchical aggregation. Topographic images of selected dust particles with sizes of one micrometre to a few tens of micrometres show a variety of morphologies, including compact single grains and large porous aggregate particles, similar to chondritic porous interplanetary dust particles. The measured grain elongations are similar to the value inferred for interstellar dust and support the idea that such grains could represent a fraction of the building blocks of comets. In the subsequent growth phase, hierarchical agglomeration could be a dominant process and would produce aggregates that stick more easily at higher masses and velocities than homogeneous dust particles. The presence of hierarchical dust aggregates in the near-surface of the nucleus of comet 67P also provides a mechanism for lowering the tensile strength of the dust layer and aiding dust release.

Entities:  

Year:  2016        PMID: 27582221     DOI: 10.1038/nature19091

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  2 in total

1.  Elemental compositions of comet 81P/Wild 2 samples collected by Stardust.

Authors:  George J Flynn; Pierre Bleuet; Janet Borg; John P Bradley; Frank E Brenker; Sean Brennan; John Bridges; Don E Brownlee; Emma S Bullock; Manfred Burghammer; Benton C Clark; Zu Rong Dai; Charles P Daghlian; Zahia Djouadi; Sirine Fakra; Tristan Ferroir; Christine Floss; Ian A Franchi; Zack Gainsforth; Jean-Paul Gallien; Philippe Gillet; Patrick G Grant; Giles A Graham; Simon F Green; Faustine Grossemy; Philipp R Heck; Gregory F Herzog; Peter Hoppe; Friedrich Hörz; Joachim Huth; Konstantin Ignatyev; Hope A Ishii; Koen Janssens; David Joswiak; Anton T Kearsley; Hicham Khodja; Antonio Lanzirotti; Jan Leitner; Laurence Lemelle; Hugues Leroux; Katharina Luening; Glenn J Macpherson; Kuljeet K Marhas; Matthew A Marcus; Graciela Matrajt; Tomoki Nakamura; Keiko Nakamura-Messenger; Tsukasa Nakano; Matthew Newville; Dimitri A Papanastassiou; Piero Pianetta; William Rao; Christian Riekel; Frans J M Rietmeijer; Detlef Rost; Craig S Schwandt; Thomas H See; Julie Sheffield-Parker; Alexandre Simionovici; Ilona Sitnitsky; Christopher J Snead; Frank J Stadermann; Thomas Stephan; Rhonda M Stroud; Jean Susini; Yoshio Suzuki; Stephen R Sutton; Susan Taylor; Nick Teslich; D Troadec; Peter Tsou; Akira Tsuchiyama; Kentaro Uesugi; Bart Vekemans; Edward P Vicenzi; Laszlo Vincze; Andrew J Westphal; Penelope Wozniakiewicz; Ernst Zinner; Michael E Zolensky
Journal:  Science       Date:  2006-12-15       Impact factor: 47.728

2.  Comet 81P/Wild 2 under a microscope.

Authors:  Don Brownlee; Peter Tsou; Jérôme Aléon; Conel M O'd Alexander; Tohru Araki; Sasa Bajt; Giuseppe A Baratta; Ron Bastien; Phil Bland; Pierre Bleuet; Janet Borg; John P Bradley; Adrian Brearley; F Brenker; Sean Brennan; John C Bridges; Nigel D Browning; John R Brucato; E Bullock; Mark J Burchell; Henner Busemann; Anna Butterworth; Marc Chaussidon; Allan Cheuvront; Miaofang Chi; Mark J Cintala; B C Clark; Simon J Clemett; George Cody; Luigi Colangeli; George Cooper; Patrick Cordier; C Daghlian; Zurong Dai; Louis D'Hendecourt; Zahia Djouadi; Gerardo Dominguez; Tom Duxbury; Jason P Dworkin; Denton S Ebel; Thanasis E Economou; Sirine Fakra; Sam A J Fairey; Stewart Fallon; Gianluca Ferrini; T Ferroir; Holger Fleckenstein; Christine Floss; George Flynn; Ian A Franchi; Marc Fries; Z Gainsforth; J-P Gallien; Matt Genge; Mary K Gilles; Philipe Gillet; Jamie Gilmour; Daniel P Glavin; Matthieu Gounelle; Monica M Grady; Giles A Graham; P G Grant; Simon F Green; Faustine Grossemy; Lawrence Grossman; Jeffrey N Grossman; Yunbin Guan; Kenji Hagiya; Ralph Harvey; Philipp Heck; Gregory F Herzog; Peter Hoppe; Friedrich Hörz; Joachim Huth; Ian D Hutcheon; Konstantin Ignatyev; Hope Ishii; Motoo Ito; Damien Jacob; Chris Jacobsen; Stein Jacobsen; Steven Jones; David Joswiak; Amy Jurewicz; Anton T Kearsley; Lindsay P Keller; H Khodja; A L David Kilcoyne; Jochen Kissel; Alexander Krot; Falko Langenhorst; Antonio Lanzirotti; Loan Le; Laurie A Leshin; J Leitner; L Lemelle; Hugues Leroux; Ming-Chang Liu; K Luening; Ian Lyon; Glen Macpherson; Matthew A Marcus; Kuljeet Marhas; Bernard Marty; Graciela Matrajt; Kevin McKeegan; Anders Meibom; Vito Mennella; Keiko Messenger; Scott Messenger; Takashi Mikouchi; Smail Mostefaoui; Tomoki Nakamura; T Nakano; M Newville; Larry R Nittler; Ichiro Ohnishi; Kazumasa Ohsumi; Kyoko Okudaira; Dimitri A Papanastassiou; Russ Palma; Maria E Palumbo; Robert O Pepin; David Perkins; Murielle Perronnet; P Pianetta; William Rao; Frans J M Rietmeijer; François Robert; D Rost; Alessandra Rotundi; Robert Ryan; Scott A Sandford; Craig S Schwandt; Thomas H See; Dennis Schlutter; J Sheffield-Parker; Alexandre Simionovici; Steven Simon; I Sitnitsky; Christopher J Snead; Maegan K Spencer; Frank J Stadermann; Andrew Steele; Thomas Stephan; Rhonda Stroud; Jean Susini; S R Sutton; Y Suzuki; Mitra Taheri; Susan Taylor; Nick Teslich; Kazu Tomeoka; Naotaka Tomioka; Alice Toppani; Josep M Trigo-Rodríguez; David Troadec; Akira Tsuchiyama; Anthony J Tuzzolino; Tolek Tyliszczak; K Uesugi; Michael Velbel; Joe Vellenga; E Vicenzi; L Vincze; Jack Warren; Iris Weber; Mike Weisberg; Andrew J Westphal; Sue Wirick; Diane Wooden; Brigitte Wopenka; Penelope Wozniakiewicz; Ian Wright; Hikaru Yabuta; Hajime Yano; Edward D Young; Richard N Zare; Thomas Zega; Karen Ziegler; Laurent Zimmerman; Ernst Zinner; Michael Zolensky
Journal:  Science       Date:  2006-12-15       Impact factor: 47.728

  2 in total
  8 in total

1.  Planetary science: Cometary dust under the microscope.

Authors:  Ludmilla Kolokolova
Journal:  Nature       Date:  2016-09-01       Impact factor: 49.962

Review 2.  Cometary Comae-Surface Links: The Physics of Gas and Dust from the Surface to a Spacecraft.

Authors:  Raphael Marschall; Yuri Skorov; Vladimir Zakharov; Ladislav Rezac; Selina-Barbara Gerig; Chariton Christou; S Kokou Dadzie; Alessandra Migliorini; Giovanna Rinaldi; Jessica Agarwal; Jean-Baptiste Vincent; David Kappel
Journal:  Space Sci Rev       Date:  2020-11-06       Impact factor: 8.017

Review 3.  Cometary dust: the diversity of primitive refractory grains.

Authors:  D H Wooden; H A Ishii; M E Zolensky
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2017-07-13       Impact factor: 4.226

4.  Cometary Dust.

Authors:  Anny-Chantal Levasseur-Regourd; Jessica Agarwal; Hervé Cottin; Cécile Engrand; George Flynn; Marco Fulle; Tamas Gombosi; Yves Langevin; Jérémie Lasue; Thurid Mannel; Sihane Merouane; Olivier Poch; Nicolas Thomas; Andrew Westphal
Journal:  Space Sci Rev       Date:  2018-03-28       Impact factor: 8.017

5.  Bouncing and spinning of amorphous Lennard-Jones nanoparticles under oblique collisions.

Authors:  Maureen L Nietiadi; Herbert M Urbassek
Journal:  Sci Rep       Date:  2022-06-23       Impact factor: 4.996

6.  Collisions between CO, CO[Formula: see text], H[Formula: see text]O and Ar ice nanoparticles compared by molecular dynamics simulation.

Authors:  Maureen L Nietiadi; Yudi Rosandi; Eduardo M Bringa; Herbert M Urbassek
Journal:  Sci Rep       Date:  2022-08-16       Impact factor: 4.996

7.  The Possible Emergence of Life and Differentiation of a Shallow Biosphere on Irradiated Icy Worlds: The Example of Europa.

Authors:  Michael J Russell; Alison E Murray; Kevin P Hand
Journal:  Astrobiology       Date:  2017-10-10       Impact factor: 4.335

8.  Bouncing of Hydroxylated Silica Nanoparticles: an Atomistic Study Based on REAX Potentials.

Authors:  Maureen L Nietiadi; Yudi Rosandi; Herbert M Urbassek
Journal:  Nanoscale Res Lett       Date:  2020-03-30       Impact factor: 4.703

  8 in total

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