Derivation of elemental abundance maps at intermediate resolution from optical interpolation of lunar prospector gamma-ray spectrometer data
Tài liệu tham khảo
Adams, 1974, Visible and near-infrared diffuse reflectance spectra of pyroxenes as applied to remote sensing of solid objects in the solar system, J. Geophys. Res., 79, 4829, 10.1029/JB079i032p04829
Arnold, 1977, Computer-generated maps of lunar composition from gamma-ray data, 945
Bielefeld, 1977, Lunar surface chemistry of regions common to the orbital X-ray and gamma-ray experiments, 1131
Bielefeld, 1977, Imaging of lunar surface chemistry from orbital X-ray data, 901
Blewett, 1997, Clementine images of the lunar sample-return stations: refinement of FeO and TiO2 mapping techniques, J. Geophys. Res., 102, 16,319, 10.1029/97JE01505
Burns, 1993
Charette, 1974, Application of remote spectral reflectance measurements to lunar geology classification and determination of titanium content of lunar soils, J. Geophys. Res., 79, 1605, 10.1029/JB079i011p01605
Chevrel, S., Pinet, P., Barreau, G., Daydou, Y., Richard, G., Maurice, S., Feldman, W., 1999. Integration of the UV-VIS spectral Clementine data and the gamma-ray Lunar Prospector data: preliminary results concerning FeO, TiO2, and Th abundances of the lunar surfaces at global scale. In: Workshop on the New View of the Moon II: Understanding the Moon Through the Integration of Diverse Datasets, LPI Contrib. 980, LPI Houston.
Chevrel, 2002, Integration of the Clementine UV-VIS spectral reflectance data and the Lunar Prospector gamma-ray spectrometer data: a global-scale multi-element analysis of the lunar surface using iron, titanium, and thorium abundance, J. Geophys. Res., 107, 10.1029/2000JE001419
Chevrel, 2002, Integration and comparison of the Clementine and the Lunar Prospector data: Global-scale multi-element analysis (Fe, Ti and Th) of the lunar surface, Solar Syst. Res., 36, 458, 10.1023/A:1022196818051
Clark, 2000, New results and implications for lunar crustal iron distribution using sensor data fusion techniques, J. Geophys. Res., 105, 4291, 10.1029/1999JE001078
Dunkin, 2003, Scientific rationale for the D-CIXS X-ray spectrometer on board ESA's SMART-1 mission to the Moon, Planet. Space Sci., 51, 435, 10.1016/S0032-0633(03)00019-9
Eliason, 1999
Elphic, 2002, Lunar prospector neutrons spectrometer constraints on TiO2, J. Geophys. Res., 107
Feldman, 1999, The lunar prospector gamma-ray and neutron spectrometers, Nucl. Instrum. Methods Phys. Res. A, 422, 562, 10.1016/S0168-9002(98)00934-6
Fischer, 1995, Lunar surface aluminum and iron concentration from Galileo solid state imaging data, and the mixing of mare and highland materials, J. Geophys. Res., 100, 23,279, 10.1029/95JE02359
Gillis, 2003, A revised algorithm for calculating TiO2 from Clementine UVVIS data: A synthesis of rock, soil, and remotely sensed TiO2 concentrations, J. Geophys. Res., 108, 10.1029/2001JE001515
Grande, 2002, The D-CIXS X-ray spectrometer, and its capabilities for lunar science, Adv. Space Res., 30, 1901, 10.1016/S0273-1177(02)00486-6
Hiesinger, 2000, J. Geophys. Res., 105, 29,239, 10.1029/2000JE001244
Johnson, 1991, Remote sensing of potential lunar resource: 1. Near-side compositional properties, J. Geophys. Res., 96, 18,821, 10.1029/91JE02045
Josset, J.-L., Heather, D.J., Dunkin, S.K., Roussel, F., Beauvivre, S., Kraenhenbueh, D., Plancke, P., Langevin, Y., Pinet, P., Chevrel, S., Cerroni, P., De Sanctis, M.-C., Dillelis, A., Sodnik, Z., Koschny, D., Barucci, A., Hofmann, B., Josset, M., Muinonen, K., Piironen, J., Ehrenfreud, P., Shkuratov, Yu., Shevchenko, V., 2002. Asteroid Moon micro-Imager Experiment (AMIE) for SMART-1 Mission, Science Objectives and Development Status. EGS XXVII General Assembly, Nice, France, April 2002, abstract #EGS02-A-06862.
Lawrence, 2002, Iron abundances on the lunar surface as measured by the lunar prospector gamma-ray and neutron spectrometers, J. Geophys. Res., 107, 10.1029/2001JE001530
Lawrence, 2003, Small-area thorium features on the lunar surface, J. Geophys. Res., 108, 10.1029/2003JE002050
Le Mouélic, 2000, Discrimination between maturity and composition of lunar soils from integrated Clementine UVVIS-NIR data. Application to Aristarchus Plateau, J. Geophys. Res., 105, 9445, 10.1029/1999JE001196
Lucey, 1995, Abundance and distribution of iron on the Moon, Science, 268, 1150, 10.1126/science.268.5214.1150
Lucey, 1998, Mapping the FeO and TiO2 content of the lunar surface with multispectral imagery, J. Geophys. Res., 103, 3679, 10.1029/97JE03019
Lucey, 2000, Lunar iron and titanium abundance algorithms based on final processing of Clementine ultraviolet-visible images, J. Geophys. Res., 105, 20,297, 10.1029/1999JE001117
Lucey, 2000, Imaging of lunar surface maturity, J. Geophys. Res., 105, 20,377, 10.1029/1999JE001110
Morris, R., 1976. Surface exposure indices of lunar rocks: a comparative FMR study. In: Proceedings of the Lunar Planetary Science Seventh, LPI Houston, pp. 315–335.
Morris, R., 1977. Origin and evolution of the grain-size dependence of the concentration of fine-grained metal in lunar soils: the maturation of lunar soils to a steady-state stage. In: Proceedings of the Lunar Science Conference Eighth, LPI Houston, pp. 3719–3747.
Morris, R., 1978. The surface exposure (maturity) of lunar soils: some concepts and Is/FeO compilation. In: Proceedings of the Lunar Planetary Science Conference Nineth, LPI Houston, pp. 2287–2297.
Morris, R., 1980. Origin and size distribution of metallic iron particles in the lunar regolith. In: Proceedings of the Lunar Science Conference 11th, LPI Houston, pp. 1697–1712.
Pieters, 2003, Systematic global mixing and melting in lunar soil evolution, Geophys. Res. Lett., 30, 2048, 10.1029/2003GL018212
Pieters, 2002, Statistical analysis of the links between lunar mare soil mineralogy, chemistry and reflectance spectra, Icarus, 155, 285, 10.1006/icar.2001.6749
Pinet, 2000, Local and regional lunar regolith characteristics at Reiner Gamma formation: optical and spectroscopic properties from Clementine and Earth-based data, J. Geophys. Res., 105, 9457, 10.1029/1999JE001086
Prettyman, T.H., Feldman, W.C., Lawrence, D.J., McKinney, G.W., Binder, A.B., Elphic, R.C., Gasnault, O.M., Maurice, S., Moore, K.R., 2002. Library least squares analysis of Lunar Prospector gamma-ray spectra. Lunar and Planetary Science Conference 33rd, LPI Houston, Abstract #2012.
Shkuratov, 1999, Iron and titanium abundance and maturity degree distribution on lunar nearside, Icarus, 137, 222, 10.1006/icar.1999.6046
Shkuratov, 1999, A model of spectral albedo of particulate surfaces: implication to optical properties of the Moon, Icarus, 137, 235, 10.1006/icar.1998.6035
Shkuratov, Yu., Pieters, C., Omelchenko, V., Stankevich, D., Kaydash, V., Taylor, L., 2003a. Estimates of the lunar surface composition with Clementine images and LSCC data. Lunar Planetary Science Conference 34th, LPI Houston, Abstract #1258.
Shkuratov, 2003, Composition of the lunar surface as will be seen from SMART-1: a simulation using Clementine data, J. Geophys. Res., 108, 10.1029/2002JE001971
Shkuratov, Yu., Pinet, P., Omelchenko, V., Kaydash, V., Stankevich, D., Chevrel, S., Daydou, Y., 2004. Derivation of elemental abundance maps at 15-km spatial resolution from the merging of Clementine optical and Lunar Prospector geochemical data. Lunar Planetary Science 35th, LPI Houston, Abstract #1162.
Starukhina, 2001, A theoretical model of lunar optical maturation: effects of submicroscopic reduced iron and particle size variations, Icarus, 152, 275, 10.1006/icar.2001.6624
Starukhina, 2004, Swirls on the Moon and Mercury: meteoroid swarm encounters as a formation mechanism, Icarus, 167, 136, 10.1016/j.icarus.2003.08.022
Starukhina, L.V., Shkuratov, Yu.G., 2004b. Global mixing as a mechanism for compositional anomalies of agglutinitic glasses. Lunar Planetary Science Conference 35th, LPI Houston, Abstract #1497.
Taylor, 1991, Lunar rocks, 183
Taylor, 2001, Lunar mare soils: space weathering and the major effects of surface-correlated nanophase Fe, J. Geophys. Res., 106, 27,985, 10.1029/2000JE001402