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The Mars Odyssey Gamma-Ray Spectrometer Instrument Suite

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2001 Mars Odyssey

Abstract

The Mars Odyssey Gamma-Ray Spectrometer is a suite of three different instruments, a gamma subsystem (GS), a neutron spectrometer, and a high-energy neutron detector, working together to collect data that will permit the mapping of elemental concentrations on the surface of Mars. The instruments are complimentary in that the neutron instruments have greater sensitivity to low amounts of hydrogen, but their signals saturate as the hydrogen content gets high. The hydrogen signal in the GS, on the other hand, does not saturate at high hydrogen contents and is sensitive to small differences in hydrogen content even when hydrogen is very abundant. The hydrogen signal in the neutron instruments and the GS have a different dependence on depth, and thus by combining both data sets we can infer not only the amount of hydrogen, but constrain its distribution with depth. In addition to hydrogen, the GS determines the abundances of several other elements. The instruments, the basis of the technique, and the data processing requirements are described as are some expected applications of the data to scientific problems.

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References

  • Anders, E. and Ebihara, M.: 1982, ‘Solar System Abundances of the Elements’, Geochim. Cosmochim. Acta 46, 2363–2380.

    Article  ADS  Google Scholar 

  • Arnold, J. R., Metzger, A. E., Anderson, E. C. and Van Dilla, M. A.: 1962, ‘Gamma Rays in Space, Ranger 3’, J. Geophys. Res. 67, 4878–4880.

    Article  ADS  Google Scholar 

  • Arnold, J. R., Boynton, W. V., Englert, P. A. J., Feldman, W. C., Metzger, A. E., Reedy, R. C., Squyres, S. W., Trombka, J. I. and Wänke, H.: 1989, Scientific Considerations in the Design of the Mars Observer Gamma-Ray Spectrometer. In High-energy Radiation Background in Space (A. C. Rester, Jr. and J. I. Trombka, eds.), AIP Conf. Proc. 186, 453–466.

    Google Scholar 

  • Bandfield, J. L., Hamilton, V. E., and Christensen, P. R.: 2000, ‘A Global View of Martian Surface Compositions from MGS-TES’, Science 287, 1626–1630.

    Article  ADS  Google Scholar 

  • Bielefeld, M. J., Reedy, R. C., Metzger, A. E., Trombka, J. I. and Arnold, J. R.: 1976, ‘Surface Chemistry of Selected Lunar Regions’, Proc. Lunar Sci. Conf. 7th, 2661–2676.

    Google Scholar 

  • Boynton, W. V., Trombka, J. I., Feldman, W. C., Arnold, J. R., Englert, P. A. J., Metzger, A. E., Reedy, R. C., Squyres, S. W., Wanke, H., Bailey, S. H., Bruckner, J., Callas, J. L., Drake, D. M., Duke, P., Evans, L. G., Haines, E. L., McCloskey, F. C., Mills H., Shinohara, C. and Starr, R.: 1992, ‘Science Application of the Mars Observer Gamma Ray Spectrometer’, JGR 97, 7681– 7698.

    Article  ADS  Google Scholar 

  • Boynton, W. V., Evans, L. G., Starr, R., Brüickner, J., Bailey, S. H. and Trombka, J. I.: 1998, ‘Induced Backgrounds in the Mars Observer Gamma-Ray Spectrometer’, in Conference on the High Energy Radiation Background in Space, IEEE Nuclear and Plasma Sciences Society, The Institute of Electrical and Electronic Engineers, Inc., Workshop Record 97TH8346, pp. 30–33.

    Chapter  Google Scholar 

  • Boynton, W. V., Feldman, W. C., Squyres, S. W., Prettyman, T. H., Bruckner, J., Evans, L. G., Reedy, R. C., Starr, R., Arnold, J. R., Drake, D. M., Englert, P. A. J., Metzger, A. E., Mitrofanov, Igor, Trombka, J. I., d’Uston, C., Wanke, H., Gasnault, O., Hamara, D. K., Janes, D. M., Marcialis, R. L., Maurice, S., Mikheeva, I., Taylor, G. J., Tokar, R. and Shinohara, C.: 2002, ‘Distribution of Hydrogen in the Near Surface of Mars: Evidence for Subsurface Ice Deposits’, Science 297, 81 – 85.

    Article  ADS  Google Scholar 

  • Brückner, J., Koerfer, M., Wänke H., Schroeder, A. N. F., Filges D., Dragovitsch P., Englert P. A. J., Starr R., Trombka J., Taylor I., Drake D. and Shunk, E.: 1990, Radiation damage in germanium detectors: Implications for the gamma-ray spectrometer of the Mars Observer spacecraft. In: Lunar and Planetary Science XXI (Lunar and Planetary Institute, Houston), 137–138.

    Google Scholar 

  • Brückner, J., Koerfer, M., Wänke, H., Schroeder, A. N. F., Filges, D., Dragovitsch, P., Englert, P. A. J., Stan, R., Trombka, J. I., Taylor, I., Drake, D. M. and Shunk, E. R.: 1991, ‘Proton Induced Radiation Damage in Germanium Detectors’, IEEE Transactions on Nuclear Science NS-38, 209–217.

    Article  ADS  Google Scholar 

  • Brückner, J., Fabian, U., Patnaik, A., Wänke, H., Cloth, P., Dagge, G., Drüke, V., Filges, D., Englert, P. A. J., Drake, D. M., Reedy, R. C. and Parlier, B: 1992, ‘Simulation Experiments for Planetary Gamma-Ray Spectroscopy by Means of Thick Target High-Energy Proton Irradiations,’ in Lunar and Planetary Science XXIII (Lunar and Planetary Institute, Houston), pp. 169 – 170.

    Google Scholar 

  • Brückner, J., Wänke, H. and Reedy, R. C.: 1987, Neutron-Induced Gamma-Ray Spectroscopy: Simulations for Chemical Mapping of Planetary Surfaces. In Proceedings of the 17th Lunar and Planetary Science Conference, Part 2, J. Geophys. Res. 92, B4, E603–E616.

    Google Scholar 

  • Clark, B. C., Baird, A. K., Weldon, R. J., Tsusaki, D. M., Schnabel, L. and Candelaria, M. P.: 1982, ‘Chemical Composition of Martian Fines’, J. Geophys. Res. 87, 10059–10067.

    Article  ADS  Google Scholar 

  • Dagge, G., Dragovitsch, P., Filges, D. and Brckner, J.: 1991, ‘Monte Carlo Simulation of Martian Gamma-Ray Spectra Induced by Galactic Cosmic Rays’, Proc. Lunar Planet. Sci. Conf 21, 425 – 435.

    ADS  Google Scholar 

  • Drake, D. M., Feldman, W. C. and Jakosky, B. M.: 1988, ‘Martian neutron leakage spectra’, J. Geophys. Res. 93, 6353 – 6368.

    Article  ADS  Google Scholar 

  • Etchegaray-Ramirez, M. I., Metzger, A. E, Haines, E. L. and Hawke, B. R.: 1983, ‘Thorium concentrations in the lunar surface: IV. Deconvolution of the Mare Imbrium, Aristarchus, and adjacent regions’, J. Geophys. Res. 88, A529–A543.

    Article  ADS  Google Scholar 

  • Evans, L. G. and Squyres, S. W.: 1987, ‘Investigation of Martian H20 and CO2 via orbital gammaray spectroscopy’, J. Geophys. Res. 92, 9153–9167.

    Article  ADS  Google Scholar 

  • Evans, L. G., Trombka, J. I. and Boynton, W. V.: 1986, ‘Elemental analysis of a comet nucleus by passive gamma-ray spectrometry from a penetrator’, J. Geophys. Res. 91, B4, D525-D532.

    Article  ADS  Google Scholar 

  • Evans, L. G., Reedy, R. C. and Trombka, J. I.: 1993, Introduction to Planetary Remote Sensing Gamma Ray Spectroscopy, in Remote Geochemical Analyses: Elemental and Mineralogical Composition (C. M. Pieters and P. A. J. Englert, Eds.) (Cambridge Univ. Press, New York), pp. 167–198.

    Google Scholar 

  • Evans, L. G., Trombka, J. I., Starr, R., Boynton, W. V. and Bailey, S. H.: 1998, Continuum Background in Space-Borne Gamma-Ray Detectors, in Conference on the High Energy Radiation Background in Space, IEEE Nuclear and Plasma Sciences Society, The Institute of Electrical and Electronic Engineers, Inc., Workshop Record 97TH8346, pp. 101–103.

    Chapter  Google Scholar 

  • Evans, L. D., Starr, R. D., Brickner, J., Reedy, R. C., Boynton, W. V., Trombka, J. I., Goldstein, J. O., Masarik, J., Nittler, L R. and McCoy, T. J.: 2001, ‘Elemental composition from gamma-ray spectroscopy of the NEAR-Shoemaker landing site on 433 Eros’, Meteortitics Planetary Sci. 36, 1639–1660.

    Article  ADS  Google Scholar 

  • Feldman, W. C. and Drake, D. M.: 1986, ‘A Doppler filter technique to measure the hydrogen content off planetary surfaces’, Nucl. Instrum. Methods Phys. Res. A245, 182–190.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Drake, D. M., O’Dell, R. D., Bringley, F. W., Jr. and Anderson, R. C.: 1989, ‘Gravitational effects on planetary neutron flux spectra’, J. Geophys. Res. 94, 513–525.

    Article  ADS  Google Scholar 

  • Feldman, W. C. and Jakosky, B. M.: 1991, ‘Detectability of martian carbonates from orbit using thermal neutrons’, J. Geophys. Res. 96, 15,589–15,598.

    Article  Google Scholar 

  • Feldman, W. C., Boynton, W. V., Jakosky, B. M. and Mellon, M. T.: 1993, ‘Redistribution of subsurface neutrons caused by ground ice on Mars’, J. Geophys. Res. 98, #E11, 20855–20870.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Boynton, W. V. and Drake, D. M.: 1993b, Planetary neutron spectroscopy from orbit, in Remote Geochemical Analysis: Elemental and Mineralogical Composition, C. M. Pieters, P. A. J. Englert, eds., pp. 213–234, Cambridge Univ. Press, New York.

    Google Scholar 

  • Feldman, W. C., Barraclough, B. L., Fuller, K. R., Lawrence, D. J., Maurice, S., Miller, M. C., Prettyman, T. H. and Binder, A. B.: 1999, ‘The Lunar Prospector Gamma-Ray and Neutron Spectrometers’, Nucl. Instr. Methods Phys. Res. A 422, 562–566.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Lawrence, D. J., Elphic, R. C., Vaniman, D. T., Thomsen, D. R., Barraclough, B. L., Maurice S. and Binder, A. B.: 2000, ‘Chemical information content of lunar thermal and epithermal neutrons’, J. Geophys. Res. 105, 20347–20363.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Maurice, S., Lawrence, D. J., Little, R. C., Lawson, S. L., Gasnault, O., Wiens, R. C., Barraclough, B. L., Elphic, R. C., Prettyman, T. H., Steinberg, J. T and Binder, A. B.: 2001, ‘Evidence for Water Ice Near the Lunar Poles’, J. Geophys. Res. Planets 106, #E10, 23231 – 23252.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Boynton, W. V., Tokar, R. L., Prettyman, T. H., Gasnault, O., Squyres, S. W., Elphic, R. C., Lawrence, D. J., Lawson, S. L., Maurice, S., McKinney, G. W., Moore, K. R. and Reedy, R. C.: 2002a, ‘Global Distribution of Neutrons from Mars: Results from Mars Odyssey’, Science 297. 75–78.

    Article  ADS  Google Scholar 

  • Feldman, W. C., Prettyman, T. H., Tokar, R. L., Boynton, W. V., Byrd, R. C., Fuller, K. R., Gasnault, O., Longmire, J. L., Olsher, R. H., Storms, S. A. and Thornton, G. W.: 2002b, ‘Fast neutron flux spectrum aboard Mars Odyssey during cruise’, J. Geophys. Res. 107, 10.1029/2001JA000295.

    Google Scholar 

  • Fermi, E.: 1950, Nuclear Physics, Univ. Chicago Press, p. 248.

    Google Scholar 

  • Gasnault, O., Feldman, W. C., Maurice, S., Genetay, I., d’Uston, C., Prettyman, T. H. and Moore, K. R.: 2001, ‘Composition from Fast Neutrons: Application to the Moon’, Geophys. Res. Lett. 28, 3797–3800

    Article  ADS  Google Scholar 

  • Jakosky, B. M. and Haberle, R. M.: 1990, ‘Year-to-year instability of the Mars south polar cap’, J. Geophys. Res. 95, 1359–1365.

    Article  ADS  Google Scholar 

  • Kieffer, H. H.: 1979, ‘Mars south polar spring and summer temperatures: A residual CO2 frost’, J. Geophys. Res. 84, 8263–8288.

    Article  ADS  Google Scholar 

  • Kieffer, H. H., Titus, T. N., Mullins, K. F. and Christensen, P. R.: 2000, ‘Mars south polar spring and summer behavior observed by TES: Seasonal cap evolution controlled by frost grain size’, J. Geophys. Res. 105, 9653–9699.

    Article  ADS  Google Scholar 

  • Lapides, J. R.: 1981, Planetary gamma-ray spectroscopy: The effects of hydrogen and the macroscopic thermal-neutron absorption cross section on the gamma-ray spectrum. Thesis, University of Maryland, College Park, 115 pp.

    Google Scholar 

  • Lawrence, D. J., Feldman, W. C., Barraclough, B. L., Elphic, R. C., Maurice, S., Binder, A. B., Miller, M. C. and Prettyman, T. H;: 1999, ‘High Resolution Measurements of Absolute Thorium Abundances on the Lunar Surface’, Geophys. Res. Lett. 26, No. 17, 2681–2684.

    Article  ADS  Google Scholar 

  • Lawrence, D. J., Feldman, W. C., Elphic, R. C., Little, R. C., Prettyman, T. H., Maurice, S., Lucey, P. G. and Binder, A. B.: 2002, Iron abundances on the lunar surface as measured by the Lunar Prospector gamma-ray and neutron spectrometers’, J. Geophys. Res. Planets, in press.

    Google Scholar 

  • Lingenfelter, R. E., Canfield, E. H. and Hampel, V. E.: 1972, ‘The lunar neutron flux revisited’, Earth Planet. Sci. Lett. 16, 355–369.

    Article  ADS  Google Scholar 

  • Lingenfelter, R. E., Canfield, E. H. and Hess, W. N.: 1961, ‘The lunar neutron flux’, J. Geophys. Res. 66, 2665–2671.

    Article  ADS  Google Scholar 

  • Mahoney, W. A., Ling, J. C., Jacobson, A. S. and Tapphorn, R. M.: 1980, ‘The HEAO 3 gamma-ray spectrometer’, Nucl. Instrum. Methods 178, 363–381.

    Article  ADS  Google Scholar 

  • Malin, M. C. and Edgett, K. E.: 2000, ‘Evidence for recent groundwater seepage and surface runoff on Mars’, Science 288, 2330–2335.

    Article  ADS  Google Scholar 

  • Masarik, J. and Reedy, R. C.: 1994, ‘Effects of Bulk Composition on Nuclide Production Processes in Meteorites’, Geochim. Cosmochim. Acta 58, 5307–5317.

    Article  ADS  Google Scholar 

  • Masarik, J. and Reedy, R. C.: 1996, ‘Gamma Ray Production and Transport in Mars’, J. Geophys. Res. 101, 18,891–18,912.

    Article  Google Scholar 

  • Mazets, E. P., Golenetskii, S. V. and Il’Inski, V. N.: 1977, P.s’ma V Astron. Zh (USSR), Vol. 2, No. 12, 563.

    ADS  Google Scholar 

  • McSween, H. Y., Murchie, S. L., Crisp, J. A., Bridges, N. T., Anderson, R. C., Bell, J. F. III, Britt, D. T., Brückner, J., Dreibus, G., Economou, T., Ghosh, A., Golombek, M. P., Greenwood, J. P., Johnson, J. R., Moore, H. J., Morris, R. V., Parker, T. J., Rieder, R., Singer, R. and Wänke, H.: 1999, ‘Chemical, multispectral, and textural constraints on the composition and origin of rocks at the Mars Pathfinder landing site’, J. Geophys. Res. 104, 8679–8715.

    Article  ADS  Google Scholar 

  • McSween, H. Y. and Keil, K.: 2000, ‘Mixing relationships in the Martian regolith and the composition of globally homogeneous dust’, Geochim. Cosmochim. Acta 64, 2155–2166.

    Article  ADS  Google Scholar 

  • Metzger, A. E.: 1984, ‘Climatology capabilities of a gamma-ray spectrometer at Mars’, Bull. Am. Astron. Soc. 16, 678–679.

    ADS  Google Scholar 

  • Metzger, A. E., Anderson E. C., Van Dilla M. A. and Arnold, J. R.: 1964, ‘Detection of an interstellar flux of gamma-rays’, Nature 204, 766–767.

    Article  ADS  Google Scholar 

  • Metzger, A. E. and Arnold, J.R.: 1970, ‘Gamma-ray spectroscopic measurements of Mars’, Appl. Opt. 9, 1289–1303.

    Article  ADS  Google Scholar 

  • Metzger, A. E., Arnold, J. R., Reedy, R. C., Trombka, J. I. and Haines, E. L.: 1986a, The application of gamma-ray spectroscopy to the climatology of Mars. In: Lunar and Planetary Science XVII (Lunar and Planetary Institute, Houston), 549–550.

    Google Scholar 

  • Metzger, A. E. and Drake, D. M.: 1990, ‘Identification of lunar rock types and search for polar ice gamma ray spectroscopy’, J. Geophys. Res. 95, 449–460.

    Article  ADS  Google Scholar 

  • Metzger, A. E. and Haines, E. L.: 1990, ‘Atmospheric measurements at Mars via gamma ray spectroscopy’, J. Geophys. Res. 95, 14,695–14,715.

    Google Scholar 

  • Metzger, A. E., Parker, R. H., Arnold, J. R., Reedy, R. C. and Trombka, J. I.: 1975, ‘Preliminary design and performance of an advanced gamma-ray spectrometer for future orbiter missions’, Proc. Lunar Sci. Conf. 6th, 2769–2784.

    Google Scholar 

  • Metzger, A. E., Parker, R. H. and Yellin, J.: 1986b, ‘High energy irradiations simulating cosmic-rayinduced planetary gamma ray production. I. Fe target’, J. Geophys. Res. 91, D495—D504.

    Article  ADS  Google Scholar 

  • Mitrofanov, I., Anfimov, D., Kozyrev, A., Litvak, M., Sanin, A., Tret’yakov, V., Krylov, A., Shvetsov, V., Boynton, W., Shinohara, C., Hamara, D. and Saunders, R. S.: 2002, ‘Maps of Subsurface Hydrogen from the High Energy Neutron Detector, Mars Odyssey’, Science 297, 78–81.

    Article  ADS  Google Scholar 

  • Pehl, R. H., Varnell, L. S. and Metzger, A. E.: 1978, ‘High-energy proton radiation damage of highpurity germanium detectors’, IEEE Trans. Nucl. Sci.. NS-25, 409–417.

    Article  ADS  Google Scholar 

  • Prettyman, T. H., Feldman, W. C., Lawrence, D. J., McKinney, G. W., Binder, A. B., Elphic, R. C., Gasnault, O. M., Maurice, S. and Moore, K. R.: 2002, ‘Library least squares analysis of Lunar Prospector Gamma-ray spectra’, 33rd Lunar and Planetary Science Conference, Abstract #2012.

    Google Scholar 

  • Reedy, R. C.: 1978, ‘Planetary gamma-ray spectroscopy’, Proc. Lunar Planet. Sci. Conf. 9th, 2961 – 2984.

    Google Scholar 

  • Reedy, R. C.: 1988, Gamma-ray and neutron spectroscopy of planetary surfaces and atmospheres. In: Nuclear Spectroscopy of Astrophysical Sources (N. Gehrels and G. Share, eds.), AIP Conf. Proc. 170 (American Institute of Physics, New York), 203–210.

    Google Scholar 

  • Reedy, R. C. and Arnold, J. R.: 1972, ‘Interaction of solar and galactic cosmic-ray particles with the Moon’, J. Geophys. Res. 77, 537–555.

    Article  ADS  Google Scholar 

  • Reedy, R. C., Arnold, J. R. and Trombka, J. I.: 1973, ‘Expected gamma ray emission from the lunar surface as a function of chemical composition’, J. Geophys. Res. 78, 5847–5866.

    Article  ADS  Google Scholar 

  • Rieder, R., Economou, T. Wänke, H., Turkevich, A., Crisp, J., Brückner, J., Dreibus, G. and McSween, H. Y. Jr.: 1997, ‘The chemical composition of Martian soil and rocks returned by the mobile alpha proton X-ray spectrometer: Preliminary results from the X-ray mode’, Science 278, 1771 – 1774.

    Article  ADS  Google Scholar 

  • Saunders, R. S., Arvidson, R. E., Badhwar, G. D., Boynton, W. V., Christensen, P., Cucinotta, F. A., Gibbs, R. G., Kloss, Jr. C., Landano, M. R., Mase, R. A., Meyer, M., Pace, G., Plaut, J. J., Sidney, W., McSmith, G. W., Spencer, D. A., Thompson, T. W. and Zeitlin, C. J.: 2004, ‘2001 Mars Odyssey Mission Summary’, Space Sci. Rev., 110, 1–36.

    Article  ADS  Google Scholar 

  • Smith, D. E., Zuber, M. T., and Neumann, G. A.: 2001, ‘Seasonal variations of snow depth on Mars’, Science 294, 2141–2146.

    Article  ADS  Google Scholar 

  • Surkov, Y. A.: 1984, ‘Nuclear-physical methods of analysis in lunar and planetary investigations’, Isotopenpraxis 20, 321–329.

    Article  Google Scholar 

  • Surkov, Y. A., Barsukov, V. L., Moskaleva, L. P., Kharyukova, V. P., Zaitseva, S. Y., Smirnov, G. G. and Manvelyan, O. S.: 1989, ‘Determination of the elemental composition of martian rocks from Phobos 2’, Nature 341, 595–598.

    Article  ADS  Google Scholar 

  • Thakur, A. N.: 1997, ‘Analysis Of Gamma-Ray Continuum Spectra to Determine the Chemical Composition’, J. Radioanal. Nucl. Chem. 215, 161–167.

    Article  Google Scholar 

  • Trombka, J. I., Dyer, C. S., Evans, L. G., Bielefeld, M. J., Seltzer, S. M. and Metzger, A. E.: 1977, ‘Reanalysis of the Apollo Cosmic Gamma-Ray Spectrum in the 0.3 to 10 MeV Energy Region’, Astrophys. .1. 212, 925–935.

    Article  ADS  Google Scholar 

  • Trombka, J. I., Evans, L. G., Starr, R., Floyd, S. R., Squyres, S. W., Whelan, J. T., Barnford, G. J., Coldwell, R. L., Rester, A. C., Surkov, Y. A., Moskaleva, L. P., Kharyukova, V. P., Manvelyan, O. S., Zaitseva, S. Y. and Smirnov, G. G.: 1992, ‘Analysis of Phobos Mission Gamma-Ray Spectra from Mars’, Proc. Lunar Planet. Sci. Conf. 22, 22–39.

    ADS  Google Scholar 

  • Trombka, J. I., Squyres, S. W., Brückner, J., Boynton, W. V., Reedy, R. C., McCoy, T. J., Gorenstein, P., Evans, L. G., Arnold, J. R., Starr, R. D., Nittler, L. R., Murphy, M. E., Mikheeva, I., McNutt Jr., R. L., McClanahan, T. P., McCartney, E. Goldsten, J. O. Gold, R. E. Floyd, S. R., Clark, P. E., Burbine, T. H., Bhangoo, J. S., Bailey, S. H. and Petaev, M.: 2000, ‘The Elemental Composition of Asteroid 433 Eros: Results of the NEAR-Shoemaker X-ray Spectrometer’, Science 289, 2101 –2105.

    Article  ADS  Google Scholar 

  • Van Dilla, M. A., Anderson, E. C., Metzger, A. E. and Schuch, R. .L.: 1962, ‘Lunar composition by scintillation spectroscopy’, IRE Trans. Nucl. Sci.. NS-9, 405–412.

    Article  ADS  Google Scholar 

  • Wänke, H. and Dreibus, G.: 1988, ‘Chemical Composition and Accretion History of Terrestrial Planets’, Phil. Trans. R. Soc. Lond. A 325, 545–557.

    Article  ADS  Google Scholar 

  • Wänke H., Brückner J., Dreibus G., Rieder R. and Ryabchikov I.: 2001, Chemical composition of rocks and soils at the Pathfinder site, Space Science Reviews, 96, 317–330.

    Article  ADS  Google Scholar 

  • Yadav, J. S., Brückner, J. and Arnold, J. R.: 1989, ‘Weak Peak Problem in High Resolution GammaRay Spectroscopy’, Nucl. Instrum. Methods Phys. Res. A277, 591–598.

    Article  ADS  Google Scholar 

  • Zent, A. P., Fanale, F. P., Salvail, J. R. and Postawko, S. E.: 1986, ‘Distribution and state of H2O in the high-latitude shallow subsurface of Mars’, Icarus 67, 19–36.

    Article  ADS  Google Scholar 

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Boynton, W.V. et al. (2004). The Mars Odyssey Gamma-Ray Spectrometer Instrument Suite. In: Russell, C.T. (eds) 2001 Mars Odyssey. Springer, Dordrecht. https://doi.org/10.1007/978-0-306-48600-5_2

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