Understanding the origin and evolution of water in the Moon through lunar sample studies

被引:49
作者
Anand, Mahesh [1 ,2 ]
Tartese, Romain [1 ]
Barnes, Jessica J. [1 ,2 ]
机构
[1] Open Univ, Dept Phys Sci, Milton Keynes MK7 6AA, Bucks, England
[2] Nat Hist Museum, Dept Earth Sci, London SW7 5BD, England
来源
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES | 2014年 / 372卷 / 2024期
关键词
Moon; water; apatite; mare basalts; lunar highlands; hydrogen isotopes; CHLORINE ISOTOPE COMPOSITION; LAPAZ ICEFIELD; VOLATILE CONTENT; GIANT IMPACT; RADIOMETER OBSERVATIONS; MAGMATIC EVOLUTION; HYDROGEN ISOTOPES; VOLCANIC GLASSES; MELT INCLUSIONS; SILICATE MELTS;
D O I
10.1098/rsta.2013.0254
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A paradigm shift has recently occurred in our knowledge and understanding of water in the lunar interior. This has transpired principally through continued analysis of returned lunar samples using modern analytical instrumentation. While these recent studies have undoubtedly measured indigenous water in lunar samples they have also highlighted our current limitations and some future challenges that need to be overcome in order to fully understand the origin, distribution and evolution of water in the lunar interior. Another exciting recent development in the field of lunar science has been the unambiguous detection of water or water ice on the surface of the Moon through instruments flown on a number of orbiting spacecraft missions. Considered together, sample-based studies and those from orbit strongly suggest that the Moon is not an anhydrous planetary body, as previously believed. New observations and measurements support the possibility of a wet lunar interior and the presence of distinct reservoirs of water on the lunar surface. Furthermore, an approach combining measurements of water abundance in lunar samples and its hydrogen isotopic composition has proved to be of vital importance to fingerprint and elucidate processes and source(s) involved in giving rise to the lunar water inventory. A number of sources are likely to have contributed to the water inventory of the Moon ranging from primordial water to meteorite-derived water ice through to the water formed during the reaction of solar wind hydrogen with the lunar soil. Perhaps two of the most striking findings from these recent studies are the revelation that at least some portions of the lunar interior are as water-rich as some Mid-Ocean Ridge Basalt source regions on Earth and that the water in the Earth and the Moon probably share a common origin.
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共 160 条
[1]   The Provenances of Asteroids, and Their Contributions to the Volatile Inventories of the Terrestrial Planets [J].
Alexander, C. M. O'D. ;
Bowden, R. ;
Fogel, M. L. ;
Howard, K. T. ;
Herd, C. D. K. ;
Nittler, L. R. .
SCIENCE, 2012, 337 (6095) :721-723
[2]   Petrology and geochemistry of LaPaz Icefield 02205: A new unique low-Ti mare-basalt meteorite [J].
Anand, M ;
Taylor, LA ;
Floss, C ;
Neal, CR ;
Terada, K ;
Tanikawa, S .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2006, 70 (01) :246-264
[3]   ICE IN THE LUNAR POLAR REGIONS [J].
ARNOLD, JR .
JOURNAL OF GEOPHYSICAL RESEARCH, 1979, 84 (NB10) :5659-5668
[4]   Hydrogen partition coefficients between nominally anhydrous minerals and basaltic melts [J].
Aubaud, C ;
Hauri, EH ;
Hirschmann, MM .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (20) :L206111-4
[5]   Intercalibration of FTIR and SIMS for hydrogen measurements in glasses and nominally anhydrous minerals [J].
Aubaud, Cyril ;
Withers, Anthony C. ;
Hirschmann, Marc M. ;
Guan, Yunbin ;
Leshin, Laurie A. ;
Mackwell, Stephen J. ;
Bell, David R. .
AMERICAN MINERALOGIST, 2007, 92 (5-6) :811-828
[6]   Accurate and precise measurements of the D/H ratio and hydroxyl content in lunar apatites using NanoSIMS [J].
Barnes, J. J. ;
Franchi, I. A. ;
Anand, M. ;
Tartese, R. ;
Starkey, N. A. ;
Koike, M. ;
Sano, Y. ;
Russell, S. S. .
CHEMICAL GEOLOGY, 2013, 337 :48-55
[7]   The origin of water in the primitive Moon as revealed by the lunar highlands samples [J].
Barnes, Jessica J. ;
Tartese, Romain ;
Anand, Mahesh ;
McCubbin, Francis M. ;
Franchi, Ian A. ;
Starkey, Natalie A. ;
Russell, Sara S. .
EARTH AND PLANETARY SCIENCE LETTERS, 2014, 390 :244-252
[8]   Hydrogen and oxygen isotope behaviors during variable degrees of upper mantle melting: Example from the basaltic glasses from Macquarie Island [J].
Bindeman, I. N. ;
Kamenetsky, V. S. ;
Palandri, J. ;
Vennemann, T. .
CHEMICAL GEOLOGY, 2012, 310 :126-136
[9]   Herschel measurements of the D/H and 16O/18O ratios in water in the Oort-cloud comet C/2009 P1 (Garradd) [J].
Bockelee-Morvan, D. ;
Biver, N. ;
Swinyard, B. ;
de Val-Borro, M. ;
Crovisier, J. ;
Hartogh, P. ;
Lis, D. C. ;
Moreno, R. ;
Szutowicz, S. ;
Lellouch, E. ;
Emprechtinger, M. ;
Blake, G. A. ;
Courtin, R. ;
Jarchow, C. ;
Kidger, M. ;
Kueppers, M. ;
Rengel, M. ;
Davis, G. R. ;
Fulton, T. ;
Naylor, D. ;
Sidher, S. ;
Walker, H. .
ASTRONOMY & ASTROPHYSICS, 2012, 544
[10]   The sources of water in Martian meteorites: Clues from hydrogen isotopes [J].
Boctor, NZ ;
Alexander, CMO ;
Wang, J ;
Hauri, E .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2003, 67 (20) :3971-3989