Evidence for platy hematite grains in Sinus Meridiani, Mars

被引:78
作者
Lane, MD
Morris, RV
Mertzman, SA
Christensen, PR
机构
[1] Planetary Sci Inst, Tucson, AZ 85705 USA
[2] Franklin & Marshall Coll, Dept Geosci, Lancaster, PA 17604 USA
[3] NASA, Lyndon B Johnson Space Ctr, Houston, TX 77058 USA
[4] Arizona State Univ, Dept Geol Sci, Tempe, AZ 85287 USA
关键词
Mars; hematite; infrared; platy hematite; Sinus Meridiani; spectroscopy;
D O I
10.1029/2001JE001832
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Midinfrared (similar to1600-200 cm(-1)) spectral data received from the Mars Global Surveyor Thermal Emission Spectrometer (MGS TES) have provided evidence for a large hematite-bearing (alpha-Fe2O3) deposit in Sinus Meridiani, Mars. We report here the results of a laboratory spectroscopic investigation of 24 hematite samples, including polycrystalline hand samples (massive and schistose textures), single-crystal hand samples, and particle-size fractions (single-crystal and polycrystalline discrete particles). Laboratory midinfrared analyses of crystallographically oriented hematite samples suggest that the hematite emission in Sinus Meridiani (SM) is predominantly from the crystallographic c-face of hematite. This observation implies the presence of platy hematite particles, with the plate face being the crystallographic c-face. The observations are consistent with a formational model where the platy, gray hematite originated as an iron-oxide, chemically precipitated from Fe-rich aqueous and/or hydrothermal solutions on early Mars, that was buried, recrystallized to platy hematite, and subsequently reexposed as lenses of schistose hematite in a friable, consolidated stratigraphic unit. Unconsolidated platy hematite particles are also likely to be present as a physical-weathering product of the schistose hematite lenses.
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页数:15
相关论文
共 70 条
[1]   A global view of Martian surface compositions from MGS-TES [J].
Bandfield, JL ;
Hamilton, VE ;
Christensen, PR .
SCIENCE, 2000, 287 (5458) :1626-1630
[2]  
BANERDT WB, 1992, MARS, P249
[3]   Emplacement of a large igneous province as a possible cause of banded iron formation 2.45 billion years ago [J].
Barley, ME ;
Pickard, AL ;
Sylvester, PJ .
NATURE, 1997, 385 (6611) :55-58
[4]   Hydrothermal origin for the 2 billion year old Mount Tom Price giant iron ore deposit, Hamersley Province, Western Australia [J].
Barley, ME ;
Pickard, AL ;
Hagemann, SG ;
Folkert, SL .
MINERALIUM DEPOSITA, 1999, 34 (08) :784-789
[5]  
Belevtsev Ya.N., 1983, Iron-formation: facts and problems, P211
[6]   ORIENTED TRANSFORMATIONS IN IRON OXIDES AND HYDROXIDES [J].
BERNAL, JD ;
DASGUPTA, DR ;
MACKAY, AL .
NATURE, 1957, 180 (4587) :645-647
[7]  
BLAKE RL, 1966, AM MINERAL, V51, P123
[8]  
Boyd F.R., 1987, SPECIAL PUBLICATION, V1, P13
[9]   RATES AND MECHANISMS OF CHEMICAL-WEATHERING OF FERROMAGNESIAN SILICATE MINERALS ON MARS [J].
BURNS, RG .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1993, 57 (19) :4555-4574
[10]   Global mapping of Martian hematite mineral deposits: Remnants of water-driven processes on early Mars [J].
Christensen, PR ;
Morris, RV ;
Lane, MD ;
Bandfield, JL ;
Malin, MC .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2001, 106 (E10) :23873-23885