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Ion microprobe analysis of oxygen isotope ratios in granulite facies magnetites: diffusive exchange as a guide to cooling history

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Abstract

Ion microprobe analysis of magnetites from the Adirondack Mountains, NY, yields oxygen isotope ratios with spatial resolution of 2–8 μm and precision in the range of 1‰ (1 sigma). These analyses represent 11 orders of magnitude reduction in sample size compared to conventional analyses on this material and they are the first report of routinely reproducible precision in the 1 per mil range for analysis of δ18O at this scale. High precision micro-analyses of this sort will permit wide-ranging new applications in stable isotope geochemistry. The analyzed magnetites form nearly spherical grains in a calcite matrix with diopside and monticellite. Textures are characteristic of granulite facies marbles and show no evidence for retrograde recrystallization of magnetite. Magnetites are near to Fe3O4 in composition, and optically and chemically homogeneous. A combination of ion probe plus conventional BrF5 analysis shows that individual grains are homogeneous with δ18O=8.9±1‰ SMOW from the core to near the rim of 0.1–1.2 mm diameter grains. Depth profiling into crystal growth faces of magnetites shows that rims are 9‰ depleted in δ18O. These low δ18O values increase in smooth gradients across the outer 10 μm of magnetite rims in contact with calcite. These are the sharpest intracrystalline gradients measured to date in geological materials. This discovery is confirmed by bulk analysis of 150–350 μm diameter magnetites which average 1.2‰ lower in δ18O than coarse magnetites due to low δ18O rims. Conventional analysis of coexisting calcite yields °18O=18.19, suggesting that bulk Δ18O (Cc-Mt)=9.3‰ and yielding an apparent equilibration “temperature” of 525° C, over 200° C below the temperature of regional metamorphism. Consideration of experimental diffusion data and grain size distribution for magnetite and calcite suggests two contrasting cooling histories. The data for oxygen in calcite under hydrothermal conditions at high P(H2O) indicates that diffusion is faster in magnetite and modelling of the low δ18O rims on magnetite would suggest that the Adirondacks experienced slow cooling after Grenville metamorphism, followed by a brief period of rapid cooling, possibly related to uplift. Conversely, the data for calcite at low P(H2O) show slower oxygen diffusion than in magnetite. Modelling based on these data is consistent with geochronology that shows slow cooling through the blocking temperature of both minerals, suggesting that the low δ18O rims form by exchange with late, low temperature fluids similar to those that infiltrated the rock to serpentinize monticellite and which infiltrated adjacent anorthosite to form late calcite veinlets. In either case, the ion microprobe results indicate that two distinct events are recorded in the post-metamorphic exchange history of these magnetites. Recognition of these events is only possible through microanalysis and has important implications for geothermometry.

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References

  • Anderson TF (1969) Self-diffusion of carbon and oxygen in calcite by isotope exchange with carbon dioxide. J Geophys Res 76:3918–3932

    Google Scholar 

  • Bacrtschi P (1976) Absolute18O content of standard mean ocean water. Earth Planet Sci Lett 31:341–344

    Google Scholar 

  • Bohlen SR, Essene EJ (1977) Feldspar and oxide thermometry of granulites in the Adirondack Highlands. Contr Miner Petrol 62:153–169

    Google Scholar 

  • Bohlen SR, Valley JW, Essene FJ (1985) Metamorphism in the Adirondacks, I. Petrology, pressure and temperature. J Petrol 26:971–992

    Google Scholar 

  • Bohlen SR (1987) Pressure-temperature-time paths and a tectonic model for the evolution of granulites. J Geol 95:617–632

    Google Scholar 

  • Cartwright I, Valley JW (1990) Fluid-rock interaction in the northwest Adirondack Mts, NY. In: Ashworth JR, Brown M (eds) High-temperature metamorphism and crustal anatexis. Miner Soc Ser 2, Unwin Hyman, London, pp 180–197

    Google Scholar 

  • Castle JE, Surman PL (1969) The self-diffusion of oxygen in magnetite, the effect of anion vacancy concentration and cation distribution. J Phys Chem 73:632–634

    Google Scholar 

  • Chaussidon M, Albarede F, Sheppard SMF (1989) Sulphur variations in the mantle from ion microprobe analyses of microsulphide inclusions. Earth Planet Sci Lett 92:144–156

    Google Scholar 

  • Chiba H, Chacko T, Clayton RN, Goldsmith JR (1989) Oxygen isotope fractionations involving diopside, forsterite, magnetite, and calcite: application to geothermometry. Geochim Cosmochim Acta 53:2985–2995

    Google Scholar 

  • Clayton RN, Mayeda TK (1963) The use of bromine pentafluoride in the extraction of oxygen from oxides and silicates for isotopic analysis. Geochim Cosmochim Acta 27:43–52

    Google Scholar 

  • Clayton RN, Goldsmith JR, Mayeda TK (1989) Oxygen isotope fractionation in quartz, albite, anorthite and calcite. Geochim Cosmochim Acta 53:725–733

    Google Scholar 

  • Cole DR, Ohmoto H, Lasaga A (1983) Isotopic exchange in mineral-fluid systems-I. Theoretical evaluation of oxygen isotope exchange accompanying surface reactions and diffusion. Geochim Cosmochim Acta 47:1681–1693

    Google Scholar 

  • Cole DR, Ohmoto H (1986) Kinetics of isotopic exchange at elevated temperatures and pressures. In: Valley JW, Taylor HP, O'Neil JR (eds) Stable isotopes in high temperature geological processes. Mineral Soc Am Rev in Mineral 16:41–90

  • Connolly C, Muehlenbachs K (1988) Contrasting oxygen diffusion in nepheline, diopside and other silicates and the relevance to isotopic systematics in meteorites. Geochim Cosmochim Acta 52:1585–1591

    Google Scholar 

  • Crank P (1975) The mathematics of diffusion, 2nd edn Oxford Univ Press, Oxford

    Google Scholar 

  • Crowe DE, Valley JW, Baker KL (1990) Micro-analysis of sulfurisotope ratios and zonation by laser microprobe. Geochim Cosmochim Acta 54:2075–2092

    Google Scholar 

  • Deloule E, Allegre C, Doe B (1986) Lead and sulfur isotope microstratigraphy in galena crystals from Mississippi Valley-type deposits. Econ Geol 81:1307–1321

    Google Scholar 

  • Dodson MH (1973) Closure temperature in cooling geochronological and petrological systems. Contrib Mineral Petrol 40:259–274

    Google Scholar 

  • Eldridge CS, Compston W, Williams IS, Walsh JL (1987) In situ microanalysis for34S/32S ratios using the ion microprobe SHRIMP. Int J Mass Spec Ion Process 76:65–83

    Google Scholar 

  • Elphick SC, Dennis PF, Graham CM (1986) An experimental study of the diffusion of oxygen in quartz and albite using an overgrowth technique. Contrib Mineral Petrol 92:322–330

    Google Scholar 

  • Elphick SC, Graham CM (1988) Hydrothermal oxygen diffusivity in forsterite, and the role of protons in rate enhancement in framework silicates. Terra Cognita 8:61

    Google Scholar 

  • Elphick SC, Graham CM, Dennis DF (1988) An ion microprobe study of anhydrous oxygen diffusion in anorthite: a comparison with hydrothermal data and some geological implications. Contrib Mineral Petrol 100:690–695

    Google Scholar 

  • Elphick SC, Graham CM (1990) Hydrothermal oxygen diffusion in diopside at 1 kb, 900–1200°C ; A comparison with oxygen diffusion in forsterite, and constraints on oxygen isotope disequilibrium in peridotite nodules. Terra Abstr 2:8

    Google Scholar 

  • Farver JR (1989) Oxygen self-diffusion in diopside with application to cooling rate determinations. Earth Planet Sci Lett 92:386–396

    Google Scholar 

  • Farver JR (1990) Oxygen self-diffusion in calcite: dependence on temperature and water fugacity. EOS Trans AM Geophys Un 71:1655

    Google Scholar 

  • Giletti BJ (1985) The nature of oxygen transport within minerals in the presence of hydrothermal water and the role of diffusion. Chem Geol 53:197–206

    Google Scholar 

  • Giletti BJ (1986) Diffusion effects on oxygen isotope temperatures of slowly cooled igneous and metamorphic rocks. Earth Planct Sci Lett 77:218–228

    Google Scholar 

  • Giletti BJ, Shimizu N (1989) Use of the ion microprobe to measure natural abundances of oxygen isotopes in minerals. US Geol Surv Bull 1890:129–136

    Google Scholar 

  • Giletti BJ, Hess KC (1988) Oxygen diffusion in magnetite. Earth Planet Sci Lett 89:115–122

    Google Scholar 

  • Gnaser H, Hutcheon ID (1987) Velocity-dependent isotope fractionation in secondary-ion emission. Physical Rev B 35:877–879

    Google Scholar 

  • Gnaser H, Hutcheon ID (1988) Preferential emission of lighter isotopes in the initial stage of sputtering. Surf Sci 195:499–512

    Google Scholar 

  • Graham CM (1981) Experimental hydrogen isotope studies III: diffusion of hydrogen in hydrous minerals, and stable isotope exchange in metamorphic rocks. Contrib Mineral Petrol 76:216–228

    Google Scholar 

  • Gregory RT, Criss RE, Taylor Jr HP (1989) Oxygen isotope exchange kinetics of mineral pairs in closed and open systems: applications to problems of hydrothermal alteration of igneous rocks and Precambrian iron formations. Chem Geol 75:1–42

    Google Scholar 

  • Hervig RL, Thomas RM, Williams P (1989) Charge neutralization and oxygen isotopic analysis of insulators with the ion microprobe. US Geol Surv Bull 1890:137–143

    Google Scholar 

  • Javoy M (1977) Stable isotopes and geothermometry. J Geol Soc 133:609–636

    Google Scholar 

  • Kelley SP, Fallick AE (1990) High precision spatially resolved analysis of δ34S in sulphides using a laser extraction technique. Geochim Cosmochim Acta 54:883–888

    Google Scholar 

  • Kronenberg AK, Yund RA, Giletti BJ (1984) Carbon and oxygen diffusion in calcite: Effects of Mn content and PH2O. Phys Chem Minerals 11:101–112

    Google Scholar 

  • Lamb WM, Brown PE, Valley JW (1991), Fluid inclusions in Adirondack granulites: implications for the retrograde P-T path. Contrib Mineral Petrol. 107:472–483

    Google Scholar 

  • Lasaga AC (1983) Geospeedometry: An extension of geothermometry. In: Saxena SK (ed) Kinetics and equilibrium in mineral reactions. Springer, Berlin Heidelberg New York, pp 81–114

    Google Scholar 

  • Lorin JC, Slodzian G, Dennebouy R, Chaintreau M (1990) SIMS measurement of oxygen isotope-ratios in meteorites and primitive solar system matter. In: Benninghoven A, Evans CA, McKeegan KD, Storms HA, Werner HW (eds) Secondary ion mass spectrometry SIMS VII, Wiley, Chichester, pp 377–380

    Google Scholar 

  • McKeegan KD (1987) Oxygen isotopes in refractory stratospheric dust particles: proof of extraterrestrial origin. Science 237:1468–1471

    Google Scholar 

  • McLelland JM, Chiarenzelli J (1990) Isotopic constraints on emplacement age of anorthositic rocks of the Marcy Massif, Adirondack Mts NY. J Geol 98:19–41

    Google Scholar 

  • McLelland JM (1990) The early history of the Adirondacks as an anorogenic magma complex. In: Perchuk L (ed) The Korzhinski volume. Cambridge Univ Press, Cambridge, UK

    Google Scholar 

  • Mezger K, Hanson GN, Bohlen SR (1989) High precision U-Pb ages of metamorphic rutile-application to the cooling history of high-grade terranes. Earth Planet Sci Lett 96:106–118

    Google Scholar 

  • Morrison J, Valley JW (1988) Post granulite facies fluid infiltration in the Adirondack Mts. Geology 16:513–516

    Google Scholar 

  • O'Neil JR, Clayton RN (1964) Oxygen isotope geothermometry. In: Craig H, Miller SC, Wasserburg GJ (eds) Isotopic and cosmic chemistry, Amsterdam North Holland Pub Co pp 157–168

    Google Scholar 

  • Reddy KPR, Oh SM, Major LD, Cooper AR (1980) Oxygen diffusion in forsterite. J Geophys Res 85:322–326

    Google Scholar 

  • Sharma T, Clayton RN (1965) Measurement of O18/O18 ratios of total oxygen of carbonates. Geochim Cosmochim Acta 29:1347–1353

    Google Scholar 

  • Sharp ZD, O'Neil JR, Essene EJ (1988) Oxygen isotope variations in granulite-grade iron formations: constraints on oxygen diffusion and retrograde isotopic exchange. Contrib Mineral Petrol 98:490–501

    Google Scholar 

  • Sharp ZD (1990a) A laser-based microanalytical method for the in situ determination of oxygen isotope ratios of silicates and oxides. Geochim Cosmochim Acta 54 1353–1357

    Google Scholar 

  • Sharp ZD (1990b) A quantitative determination of oxygen diffusion rates in magnetite from natural isotopic variations. EOS Trans Am Geophys Un 71:1663–1664

    Google Scholar 

  • Slodzian G (1980) Microanalyzers using secondary ion emission. Advances in eletronics and electron physics. Academic Press suppl 138, pp 1–44

  • Slodzian G, Lorin JC and Hawette A (1980) Isotopic effect on the ionization probabilities in secondary ion emission. J Phys. 23:555–558

    Google Scholar 

  • Shimizu N, Hart SR (1982) Isotope fractionation in secondary ion mass spectrometry. J Appl Phys 53:1303–1311

    Google Scholar 

  • Valley JW, Essene EJ (1980) Calc-silicate reactions in Adirondack marbles: the role of fluids and solid solutions. Bull Geol Soc Am 91:114–117, 720–815

    Google Scholar 

  • Valley JW, O'Neil JR (1984) Fluid heterogeneity during granulite facies metamorphism in the Adirondacks: stable isotope evidence. Contrib Mineral Petrol 5:158–173

    Google Scholar 

  • Valley JW, Bohlen SR, Essene EJ, Lamb W (1990) Metamorphism in the Adirondacks: II. The role of fluids. J Petrol 31:555–596

    Google Scholar 

  • Wada H (1988) Microscale isotopic zoning in calcite and graphite crystals in marble. Nature 331:61–63

    Google Scholar 

  • Zinner E (1989) Isotopic measurements with the ion microprobe. US Geol Surv Bull 1890:145–162

    Google Scholar 

  • Zinner E, Fahey AJ, McKeegan KD (1986) Characterization of electron multipliers by charge distributions. In: SIMS V Benninghoven A, Colton RJ, Simons DS, Werner HW (eds). Springer, Berlin Heidelberg New York, pp 170–172

    Google Scholar 

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Valley, J.W., Graham, C.M. Ion microprobe analysis of oxygen isotope ratios in granulite facies magnetites: diffusive exchange as a guide to cooling history. Contr. Mineral. and Petrol. 109, 38–52 (1991). https://doi.org/10.1007/BF00687199

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