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Physical, Chemical, and Mineralogical Properties of Comet 81P/Wild 2 Particles Collected by Stardust

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Abstract

NASA’s Stardust spacecraft collected dust from the coma of Comet 81P/Wild 2 by impact into aerogel capture cells or into Al-foils. The first direct, laboratory measurement of the physical, chemical, and mineralogical properties of cometary dust grains ranging from <10−15 to ∼10−4 g were made on this dust. Deposition of material along the entry tracks in aerogel and the presence of compound craters in the Al-foils both indicate that many of the Wild 2 particles in the size range sampled by Stardust are weakly bound aggregates of a diverse range of minerals. Mineralogical characterization of fragments extracted from tracks indicates that most tracks were dominated by olivine, low-Ca pyroxene, or Fe-sulfides, although one track was dominated by refractory minerals similar to Ca–Al inclusions in primitive meteorites. Minor mineral phases, including Cu–Fe-sulfide, Fe–Zn-sulfide, carbonate and metal oxides, were found along some tracks. The high degree of variability of the element/Fe ratios for S, Ca, Ti, Cr, Mn, Ni, Cu, Zn, and Ga among the 23 tracks from aerogel capture cells analyzed during Stardust Preliminary Examination is consistent with the mineralogical variability. This indicates Wild 2 particles have widely varying compositions at the largest size analyzed (>10 μm). Because Stardust collected particles from several jets, sampling material from different regions of the interior of Wild 2, these particles are expected to be representative of the non-volatile component of the comet over the size range sampled. Thus, the stream of particles associated with Comet Wild 2 contains individual grains of diverse elemental and mineralogical compositions, some rich in Fe and S, some in Mg, and others in Ca and Al. The mean refractory element abundance pattern in the Wild 2 particles that were examined is consistent with the CI meteorite pattern for Mg, Si, Cr, Fe, and Ni to 35%, and for Ca, Ti and Mn to 60%, but S/Si and Fe/Si both show a statistically significant depletion from the CI values and the moderately volatile elements Cu, Zn, Ga are enriched relative to CI. This elemental abundance pattern is similar to that in anhydrous, porous interplanetary dust particles (IDPs), suggesting that, if Wild 2 dust preserves the original composition of the Solar Nebula, the anhydrous, porous IDPs, not the CI meteorites, may best reflect the Solar Nebula abundances. This might be tested by elemental composition measurements on cometary meteors.

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References

  • E. Anders, N. Grevesse, Abundances of the elements: meteoritic and solar. Geochim. Cosmochim. Acta 53, 197–214 (1989)

    Article  ADS  Google Scholar 

  • J.P. Bradley, S.A. Sandford, R.M. Walker, Interplanetary dust particles, in Meteorites and the Early Solar System, ed. by J. Kerridge, M.S. Matthews (University of Arizona Press, 1988), pp. 861–898

    Google Scholar 

  • D.E. Brownlee, D.J. Joswiak, S.G. Love, A.O. Nier, D.J. Schlütter, J.P. Bradley, Identification of cometary and asteroidal particles in stratospheric IDP collections. Lunar Planet. Sci. XXIV, 205–206 (1993)

    ADS  Google Scholar 

  • D.E. Brownlee, et al. Surface of a Young Jupiter Family Comet 81P/Wild 2: view from the Stardust spacecraft. Science 304, 1764–1769 (2004)

    Article  ADS  Google Scholar 

  • D.E. Brownlee, et al. Comet 81P/Wild2 under a microscope. Science 314, 1711–1716 (2006)

    Article  ADS  Google Scholar 

  • G.J. Flynn, S. Bajt, S.R. Sutton, M.E. Zolensky, K.L. Thomas, L.P. Keller, The abundance pattern of elements having low nebular condensation temperatures in interplanetary dust particles: evidence for a new chemical type of chondritic material, in Physics; Chemistry; and Dynamics of Interplanetary Dust, vol. 104, ed. by B.A.S. Gustafson, M.S. Hanner (Astronomical Society of the Pacific Conference Series, 1996), pp. 291–297

    Google Scholar 

  • G.J. Flynn, et al. Elemental compositions of Comet 81P/Wild 2 samples collected by Stardust. Science 314, 1731–1735 (2006)

    Article  ADS  Google Scholar 

  • M.N. Fomenkova, J.F. Kerridge, K. Marti, L.-A. McFadden, Compositional trends in rock-forming elements of Comet Halley dust. Science 258, 266–269 (1992)

    Article  ADS  Google Scholar 

  • F. Hörz, et al. Impact features on Stardust: implications for Comet 81P/Wild 2 dust. Science 314, 1716–1719 (2006)

    Article  ADS  Google Scholar 

  • E.K. Jessberger, A. Christoforidis, J. Kissel, Aspects of the major element composition of Halley’s dust. Nature 332, 691–695 (1988)

    Article  ADS  Google Scholar 

  • L.P. Keller, et al. Infrared spectroscopy of Comet 81P/Wild 2 samples returned by Stardust. Science 314, 1728–1731 (2006)

    Article  ADS  Google Scholar 

  • K. Lodders, Solar system abundances and condensation temperatures of the elements. Astrophys. J. 591, 1220–1247 (2003)

    Article  ADS  Google Scholar 

  • S.G. Love, D.E. Brownlee, A direct measurement of the terrestrial mass accretion rate of cosmic dust. Science 262, 550–553 (1993)

    Article  ADS  Google Scholar 

  • K.D. McKeegan, et al. Isotopic compositions of cometary matter returned by Stardust. Science 314, 1724–1728 (2006)

    Article  ADS  Google Scholar 

  • L. Mukhin, G. Dolnikov, E. Evlanov, M. Fomenkova, O. Prilutsky, R. Sagdeev, Re-evaluation of the chemistry of dust grains in the coma of Comet Halley. Nature 350, 480–481 (1991)

    Article  ADS  Google Scholar 

  • F.J.M. Rietmeijer, Interplanetary dust particles, in Planetary Materials, Reviews in Mineralogy, vol. 36, ed. by J.J. Papike (Mineralogical Society of America, Chantilly, Virginia, 1998), pp. 2-1–2-95

    Google Scholar 

  • F.J.M. Rietmeijer, Interplanetary dust and carbonaceous meteorites: constraints on porosity, mineralogy and chemistry of meteors from rubble-pile planetesimals, in Modern Meteor Science, An interdisciplinary view, ed. by R. Hawkes, I. Mann, P. Brown (Springer, 2005), pp. 321–338

    Google Scholar 

  • F.J.M. Rietmeijer, Natural variation in comet aggregate meteoroid composition. Earth Moon Planets (2008, this issue)

    Google Scholar 

  • S.A. Sandford, et al. Organics captured from Comet 81P/Wild 2 by the Stardust spacecraft. Science 314, 1720–1724 (2006)

    Article  ADS  Google Scholar 

  • L.S. Schramm, D.E. Brownlee, M.M. Wheelock, Major element composition of stratospheric micrometeorites. Meteoritics 24, 99–112 (1989)

    ADS  Google Scholar 

  • H. Schulze, J. Kissel, E.K. Jessberger, K. Elmar, Chemistry and mineralogy of Comet Halley’s dust, in From Stardust to Planetesimals, vol. 122, ed. by Y.J. Pendleton, A.G.G.M. Tielens (ASP Conference Series, 1997), pp. 397–414

    Google Scholar 

  • Z. Sekanina, et al. Modeling of the nucleus and jets of Comet 81P/Wild 2 based on the Stardust encounter data. Science 304, 1769–1774 (2004)

    Article  ADS  Google Scholar 

  • J.M. Trigo-Rodríguez, G. Dominguez, M.J. Burchell, F. Hörz, J. Llorca, P. Tsou, W.W. Anderson, Towards an understanding of hypervelocity impact into aerogel. Meteorit. Planet. Sci. (2008, in press)

    Google Scholar 

  • P. Tsou, D.E. Brownlee, J.D. Anderson, S. Bhaskaran, A.R. Cheuvront, B.C. Clark, T. Duxbury, T. Economou, S.F. Green, M.S. Hanner, F. Hörz, J. Kissel, J.A.M. McDonnell, R.L. Newburn, R.E. Ryan, S.A. Sandford, Z. Sekanina, A.J. Tuzzolino, J.M. Vellinga, M.E. Zolensky, Stardust encounters comet 81P/Wild 2. J. Geophys. Res. 109(E12), E12S01 (2004)

    Article  Google Scholar 

  • A. Tuzzolino, et al. Dust measurements in the coma of Comet 81P/Wild 2 by the dust flux monitor instrument. Science 304, 1776–1780 (2004)

    Article  ADS  Google Scholar 

  • A.J. Westphal, C. Snead, A. Butterworth, G. Graham, J.P. Bradley, S. Bajt, P.G. Grant, G. Bench, S. Brennan, P. Pianetta, Aerogel keystones: extraction of complete hypervelocity impact events from aerogel collectors. Meteorit. Planet. Sci. 39, 1375–1386 (2004)

    Article  ADS  Google Scholar 

  • M.E. Zolensky, et al. Mineralogy and petrology of Comet 91P/Wild 2 nucleus samples. Science 314, 1735–1739 (2006)

    Article  ADS  Google Scholar 

Download references

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Correspondence to George James Flynn .

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Flynn, G.J. (2007). Physical, Chemical, and Mineralogical Properties of Comet 81P/Wild 2 Particles Collected by Stardust. In: Trigo-Rodríguez, J.M., Rietmeijer, F.J.M., Llorca, J., Janches, D. (eds) Advances in Meteoroid and Meteor Science. Springer, New York, NY. https://doi.org/10.1007/978-0-387-78419-9_61

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