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High-pressure investigations on Piplia Kalan eucrite meteorite using in-situ X-ray diffraction and ^(57)Fe Mssbauer spectroscopic technique up to 16 GPa

High-pressure investigations on Piplia Kalan eucrite meteorite using in-situ X-ray diffraction and ^(57)Fe Mssbauer spectroscopic technique up to 16 GPa
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摘要 We report here high-pressure investigations on Piplia Kalan eucrite-a member of HED (Howardite -Eucrite-Diogenite) family from asteroid 4-Vesta based on synchrotron X-ray diffraction (up to 16 GPa) and ^57Fe Mossbauer spectroscopy (up to 8 GPa). Dominant with anorthite-rich plagioclase, pigeonite-rich pyroxene and clino-ferrosilite, the sample displayed various phase transitions attaining amorphous character at 16 GPa. These phase transitions of individual components could be explained simultaneously through variations in high-pressure XRD patterns and the Mossbauer parameters. Most prominent P21/c to C2/c transition of pigeonite and ferrosilite was exhibited both as sudden variation in Mossbauer parameters and population inversion of Fe^2+ in M1 and M2 sites between 2.9 and 3.8 GPa and variation in intensity profile in XRD patterns at 3.56 GPa. Anorthite seemed to respond more to such impact than other components in the sample. Complete amorphization in anorthite which occurred at lower pressure of - 12 GPa implied residual stress experienced due to shock impact. The presence of high pressure (monoclinic) phase of pigeonite and ferrosilite at ambient condition in this eucrite sample confirmed earlier suggestions of an early shock event. This report is an attempt to emphasize the role of anorthite in the determination of the residual stress due to impact process in the parent body thus to understand the behavioral differences amongst HED members. We report here high-pressure investigations on Piplia Kalan eucrite-a member of HED (Howardite -Eucrite-Diogenite) family from asteroid 4-Vesta based on synchrotron X-ray diffraction (up to 16 GPa) and ^57Fe Mossbauer spectroscopy (up to 8 GPa). Dominant with anorthite-rich plagioclase, pigeonite-rich pyroxene and clino-ferrosilite, the sample displayed various phase transitions attaining amorphous character at 16 GPa. These phase transitions of individual components could be explained simultaneously through variations in high-pressure XRD patterns and the Mossbauer parameters. Most prominent P21/c to C2/c transition of pigeonite and ferrosilite was exhibited both as sudden variation in Mossbauer parameters and population inversion of Fe^2+ in M1 and M2 sites between 2.9 and 3.8 GPa and variation in intensity profile in XRD patterns at 3.56 GPa. Anorthite seemed to respond more to such impact than other components in the sample. Complete amorphization in anorthite which occurred at lower pressure of - 12 GPa implied residual stress experienced due to shock impact. The presence of high pressure (monoclinic) phase of pigeonite and ferrosilite at ambient condition in this eucrite sample confirmed earlier suggestions of an early shock event. This report is an attempt to emphasize the role of anorthite in the determination of the residual stress due to impact process in the parent body thus to understand the behavioral differences amongst HED members.
出处 《Geoscience Frontiers》 SCIE CAS CSCD 2016年第2期265-271,共7页 地学前缘(英文版)
基金 Council of Scientific and Industrial Research(CSIR),PLANEX program of India Space Research Organization,Department of Space(Government of India),CSR-SHORE-PSC-02005 and ISRO projects(GP)for funding, CSIR for providing Emeritus Scientist Fellowship(UC)
关键词 METEORITES High pressure X-ray diffraction Mossbauer spectroscopy Eucrites synchrotron radiation Ferrosilite Meteorites High pressure X-ray diffraction Mossbauer spectroscopy Eucrites synchrotron radiation Ferrosilite
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参考文献46

  • 1Alvaro, M., Nestola, F., Ballaran, T.B., Camara, E, Domeneghetti, M.C., Tazzoli, V., 2010. High- pressure phase transition of a natural pigennite, American Miner- alogist 95, 306-311.
  • 2Angel, R,J., 1988. High -pressure structure of anorthite. American Mineralogist 73, 1114-1119.
  • 3Angel, R4. 1992. Order-disorder and the high-pressure PI-/I transition in anorthite. American Mineralogist 77, 923-929.
  • 4Angel, R.J., 1994. Feldspar at high pressure. In: Parsons, I. (Ed.), Feldspars and Their Reactions. Kluwer, Dordrecht, The Netherlands, pp. 271-312.
  • 5Angel, R.J, Hugh-Jones, D.A., 1994. Equation of state and thermodynamic properties of enstatite pyroxenes. Journal of Geophysical Research 99, 19777-19783.
  • 6Bhandari, N., Murty, S.V.S., Shukla, P.N., Mahajan, R.R., Shukla, A.D., Lashkari, G., Sisodia, M.S., Tripathi, R.E, Parthasarathy, G., Verma, H.C., Franchi, A.I,, 2008. Ararki (LS) chondrite: first meteorite find in Thar desert of India. Meteoritic & Planetary Science 43, 761-770.
  • 7Bhandari, N., Murty, S.V.S., Mahajan, R.R., Parthasarathy, G., Shukla, P.N., Sisodia, M.S., Rai, V.K., 2009. I(aprada (L5/6) Chondrite: Chemistry, petrography, noble gases, and nuclear tracks. Planetary and Space Sciences 57, 2048-2052.
  • 8Buchanan, EC., Mittlefehldt, D.W., Hutchison, R., Koerble, C., 1998. Piplia I(alan: Is it a Monomict Eucrite or a Metamorphosed Polymict Eucrite7 29th Annual Lunar and Planetary Science Conference, March 16-20,1998, Houston, TX abstract no. 1350.
  • 9Buchanan, P.C., Mittlefehldt, D.W, Hutchison, R., Keoberl, C., Lindstrom, D,J., Pandit, M.K., 2000. Petrology of the Indian eucrite Piplia Kalan. Meteoritic & Planetary Science 35, 609-615.
  • 10Burns, R.G., 1993. Mineralogical Applications of Crystal Field Theory. Cambridge University Press, Cambridge, p. 551.

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