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Mutual replacement reactions in alkali feldspars I: microtextures and mechanisms

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Abstract

Intracrystal microtextures formed by a process of mutual replacement in alkali feldspars record fluid–rock reactions that have affected large volumes of the Earth’s crust. Regular, ≤1 μm-scale ‘strain-controlled’ perthitic microtextures coarsen, by up to 103, by a dissolution–reprecipitation process, producing microporous patch or vein perthites on scales >100 μm. We have developed earlier studies of such reactions in alkali feldspar cm-scale primocrysts in layered syenites from the Klokken intrusion, South Greenland. We present new hyperspectral CL, SEM images, and laser ICPMS analytical data, and discuss the mechanism of such replacement reactions. The feldspars grew as homogeneous sodic sanidines which unmixed and ordered by volume diffusion during cooling into the microcline field at ~450°C, giving regular, fully coherent ‘braid’ cryptoperthite. At ≤450°C the crystals reacted with a circulating post-magmatic aqueous fluid. The braid perthite behaved as a single reactant ‘phase’ which was replaced by two product phases, incoherent subgrains of low albite and microcline, with micropores at their boundaries. The driving force for the reactions was coherency strain energy, which was greater than the surface energy in the subgrain mosaic. The external euhedral crystal shapes and bulk major element composition of the primocrysts were unchanged but they became largely pseudomorphs composed of subgrains usually with the ‘pericline’ and ‘adularia’ habits (dominant {110} and subordinate {010} morphology) characteristic of low T growth. The subgrains have an epitactic relationship with parent braid perthite. Individual subgrains show oscillatory zoning in CL intensity, mainly at blue wavelengths, which correlates with tetrahedral Ti. Regular zoning is sometimes truncated by irregular, discordant surfaces suggesting dissolution, followed by resumption of growth giving regular zoning. Zones can be traced through touching subgrains, of both albite and microcline, for distances up to ~500 μm. At ≤340°C, the microcline subgrains underwent a third stage of unmixing to give straight lamellar film perthites with periodicities of ~1 μm, which with further cooling became semicoherent by the development of spaced misfit dislocations. Sub-grain growth occurred in fluid films that advanced through the elastically strained braid perthite crystals, which dissolved irreversibly. Braid perthite was more soluble than the strain-free subgrain mosaics which precipitated from the supersaturated solution. Some volumes of braid texture have sharp surfaces that suggest rapid dissolution along planes with low surface energies. Others have complex, diffuse boundaries that indicate a phase of coherent lamellar straightening by volume diffusion in response to strain relief close to a slowly advancing interface. Nucleation of strain-free subgrains was the overall rate-limiting step. To minimise surface energy subgrains grew with low energy morphologies and coarsened by grain growth, in fluid films whose trace element load (reflected in the oscillatory zoning) was dictated by the competitive advance of subgrains over a range of a few tens of mm. The cross-cutting dissolution surfaces suggest influxes of fresh fluid. Removal of feldspar to give 2 vol% porosity would require a feldspar:fluid ratio of ~1:26 (by wt). The late reversion to strain-controlled exsolution in microcline subgrains is consistent with loss of fluid above 340°C following depressurization of the intrusion. A second paper (Part II) describes trace element partitioning between the albite and microcline subgrains, and discusses the potential of trace elements as a low-T geothermometer.

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References

  • Adams JB (1968) Differential solution of plagioclase in supercritical water. Am Mineral 53:1603–1613

    Google Scholar 

  • Bachinski SW, Müller G (1971) Experimental determination of the microcline-low albite solvus. J Petrol 12:329–356

    Google Scholar 

  • Bickle MJ, Teagle DAH (1992) Strontium alteration in the Troodos ophiolite—implications for fluid fluxes and geochemical transport in midocean ridge hydrothermal systems. Earth Planet Sci Lett 113:219–237. doi:10.1016/0012-821X(92)90221-G

    Article  Google Scholar 

  • Brooks RJ, Finch AA, Hole DE, Townsend PD, Wu Z-L (2002) The red to near-infrared luminescence in alkali feldspar. Contrib Mineral Petrol 143:484–494

    Google Scholar 

  • Brown WL, Parsons I (1984) Exsolution mechanisms and kinetics in an ordered cryptoperthite series. Contrib Mineral Petrol 86:3–18. doi:10.1007/BF00373706

    Article  Google Scholar 

  • Brown WL, Parsons I (1988) Zoned ternary feldspars in the Klokken intrusion: exsolution microtextures and mechanisms. Contrib Mineral Petrol 98:444–454. doi:10.1007/BF00372364

    Article  Google Scholar 

  • Brown WL, Parsons I (1989) Alkali feldspars: ordering rates, phase transformations and behaviour diagrams for igneous rocks. Mineral Mag 53:25–42. doi:10.1180/minmag.1989.053.369.03

    Article  Google Scholar 

  • Brown WL, Parsons I (1993) Storage and release of elastic strain energy: the driving force for low temperature reactivity and alteration of alkali feldspars. In: Boland JN, Fitz Gerald JD (eds) Defects and processes in the solid state: geoscience applications. The McLaren volume (Developments in petrology 14). Elsevier, Amsterdam, pp 267–290

    Google Scholar 

  • Brown WL, Becker SM, Parsons I (1983) Cryptoperthites and cooling rate in a layered syenite pluton. Contrib Mineral Petrol 82:13–25. doi:10.1007/BF00371171

    Article  Google Scholar 

  • Brown WL, Lee MR, Waldron KA, Parsons I (1997) Strain-driven disordering of low microcline to low sanidine during partial phase separation in microperthites. Contrib Mineral Petrol 127:305–313. doi:10.1007/s004100050282

    Article  Google Scholar 

  • Burgess R, Kelley SP, Parsons I, Walker FDL, Worden RH (1992) 40Ar–39Ar analysis of perthite microtextures and fluid inclusions in alkali feldspars from the Klokken syenite, South Greenland. Earth Planet Sci Lett 109:147–167. doi:10.1016/0012-821X(92)90080-F

    Article  Google Scholar 

  • Dolejš D, Wagner T (2008) Thermodynamic modelling of non-ideal mineral–fluid equilibria in the system Si–Al–Fe–Mg–Ca–Na–K–H–O–Cl at elevated temperatures and pressures: implications for hydrothermal mass transfer in granitic rocks. Geochim Cosmochim Acta 72:526–553. doi:10.1016/j.gca.2007.10.022

    Article  Google Scholar 

  • Edwards PR, Martin RW, Lee MR (2007) Combined cathodoluminescence hyperspectral imaging and wavelength dispersive X-ray analysis of minerals. Am Mineral 92:235–242. doi:10.2138/am.2007.2152

    Article  Google Scholar 

  • Elkins LT, Grove TL (1990) Ternary feldspar experiments and thermodynamic models. Am Mineral 75:544–559

    Google Scholar 

  • Evangelakakis C, Kroll H, Voll G, Wenk H-R, Meisheng H, Kopcke J (1993) Low temperature coherent exsolution in alkali feldspars from high-grade metamorphic rocks of Sri Lanka. Contrib Mineral Petrol 114:519–532. doi:10.1007/BF00321756

    Article  Google Scholar 

  • Ferry JM (1985) Hydrothermal alteration of tertiary igneous rocks from the Isle of Skye, northwest Scotland. II Granites. Contrib Mineral Petrol 91:283–304. doi:10.1007/BF00413353

    Article  Google Scholar 

  • Finch AA (1990) Genthelvite and Willemite, zinc minerals associated with alkaline magmatism from the Motzfeldt Centre, south Greenland. Mineral Mag 55:407–412. doi:10.1180/minmag.1990.054.376.05

    Article  Google Scholar 

  • Finch AA, Klein J (1999) The causes and petrological significance of cathodoluminescence emissions from alkali feldspars. Contrib Mineral Petrol 135:234–244. doi:10.1007/s004100050509

    Article  Google Scholar 

  • Finch AA, Parsons I, Mingard SC (1995) Biotites as indicators of fluorine fugacities in late-stage magmatic fluids: the Gardar province of South Greenland. J Petrol 36:1701–1728

    Google Scholar 

  • Fitz Gerald JD, Parsons I, Cayzer N (2006) Nanotunnels and pull-aparts: defects of exsolution lamellae in alkali feldspars. Am Mineral 91:772–783. doi:10.2138/am.2006.2029

    Article  Google Scholar 

  • Fuhrman ML, Lindsley DL (1988) Ternary feldspar modelling and thermometry. Am Mineral 73:201–215

    Google Scholar 

  • Geisler T, Schaltegger U, Tomaschek F (2007) Re-equilibration of zircon in aqueous fluids and melts. Elements 3:43–50. doi:10.2113/gselements.3.1.43

    Article  Google Scholar 

  • Giggenbach WF (1988) Geothermal solute equilibria. Derivation of Na–K–Mg–Ca geoindicators. Geochim Cosmochim Acta 52:2749–2765. doi:10.1016/0016-7037(88)90143-3

    Article  Google Scholar 

  • Ginibre C, Wörner G, Kronz A (2004) Structure and dynamics of the Laacher See magma chamber (Eifel, Germany) from major and trace element zoning in sanidine: a cathodoluminescence and electron microprobe study. J Petrol 45:2197–2224. doi:10.1093/petrology/egh053

    Article  Google Scholar 

  • Götze J, Krebetschek MR, Habermann D, Wolf D (2000) High-resolution cathodoluminescence studies of feldspar minerals. In: Pagel M, Barbin V, Blanc Ph, Ohnenstetter D (eds) Cathodoluminescence in geosciences. Springer, Berlin, pp 245–270

    Google Scholar 

  • Guthrie GD, Veblen DR (1991) Turbid alkali feldspars from the Isle of Skye, Scotland. Contrib Mineral Petrol 108:398–404. doi:10.1007/BF00285938

    Article  Google Scholar 

  • Harper CL (1988) On the nature of time in cosmological perspective. PhD thesis, University of Oxford, United Kingdom

  • Hovis GL, Kroll H, Breit U, Yund RA (2003) Elastic strain enthalpies of exsolution: HF solution calorimetric experiments on alkali aluminosilictae and aluminogermanate feldspars. Am Mineral 88:547–555

    Google Scholar 

  • Johannes W, Koepke J, Behrens H (1994) Partial melting reactions of plagioclase and plagioclase-bearing systems. In: Parsons I (ed) Feldspars and their reactions. Kluwer Academic Publishers, Dordrecht, pp 161–194

    Google Scholar 

  • Johnson EA, Rossman GR (2004) A survey of hydrous species and concentrations in igneous feldspars. Am Mineral 89:586–600

    Google Scholar 

  • Kroll H, Schiemann I, von Cölln G (1986) Feldspar sold solutions. Am Mineral 71:1–16

    Google Scholar 

  • Labotka TC, Cole DR, Fayek M, Riciputi LR, Stadermann FJ (2004) Coupled cation and oxygen-isotope exchange between alkali feldspar and aqueous chloride solution. Am Mineral 89:1822–1825

    Google Scholar 

  • Lagache M (1984) The exchange equilibrium distribution of alkali and alkaline-earth elements between feldspars and hydrothermal solutions. In: Brown WL (ed) Feldspars and feldspathoids. Structures, properties and occurrences. Reidel, Dordrecht, pp 247–280

    Google Scholar 

  • Lee MR, Parsons I (1997) Dislocation formation and albitization in alkali feldspars from the Shap granite. Am Mineral 82:557–570

    Google Scholar 

  • Lee MR, Waldron KA, Parsons I (1995) Exsolution and alteration microtextures in alkali feldspar phenocrysts from the Shap granite. Mineral Mag 59:63–78. doi:10.1180/minmag.1995.59.394.06

    Article  Google Scholar 

  • Lee MR, Waldron KA, Parsons I, Brown WL (1997) Feldspar–fluid interactions in braid microperthites: pleated rims and vein microperthites. Contrib Mineral Petrol 127:291–304. doi:10.1007/s004100050281

    Article  Google Scholar 

  • Lee MR, Martin RW, Trager-Cowan C, Edwards PR (2005) Imaging of cathodoluminescence zoning in calcite by scanning electron microscopy and hyper-spectral mapping. J Sed Res 75:313–322. doi:10.2110/jsr.2005.023

    Article  Google Scholar 

  • Lee MR, Parsons I, Edwards P, Martin RW (2007) Identification of cathodoluminescence activators in zoned alkali feldspars by hyperspectral imaging and electron probe microanalysis. Am Mineral 92:243–252. doi:10.2138/am.2007.2160

    Article  Google Scholar 

  • Mason RA, Parsons I, Long JVP (1985) Trace and minor element chemistry of alkali feldspars in the Klokken layered syenite series. J Petrol 26:952–970

    Google Scholar 

  • Montgomery CW, Brace WF (1975) Micropores in plagioclase. Contrib Mineral Petrol 52:17–28. doi:10.1007/BF00377999

    Article  Google Scholar 

  • Morey GW, Hesselgesser (1951) The solubility of some minerals in superheated steam at high pressures. Econ Geol 46:821–835

  • Nakano S, Akai J, Sugaki A (2002) Fluorite particles inducing butterfly aggregates of incipient microperthite in alkali feldspar from a syenite, Patagonian Andes, southern Chile. Am Mineral 87:1377–1383

    Google Scholar 

  • Nakano A, Akai J, Shimobayashi N (2005) Contrasting Ca–Fe distributions and related microstructures in syenite from the Patagonian Andes, southern Chile. Mineral Mag 69:521–535. doi:10.1180/0026461056940268

    Article  Google Scholar 

  • O’Neil JR, Taylor HP (1967) The oxygen isotope and cation exchange chemistry of feldspars. Am Mineral 52:1414–1437

    Google Scholar 

  • Orville PM (1963) Alkali ion exchange between vapor and feldspar phases. Am J Sci 261:201–237

    Google Scholar 

  • Parsons I (1978) Feldspars and fluids in cooling plutons. Mineral Mag 42:1–17. doi:10.1180/minmag.1978.042.321.01

    Article  Google Scholar 

  • Parsons I (1979) The Klokken gabbro–syenite complex, South Greenland: Cryptic variation and origin of inversely graded layering. J Petrol 20:653–694

    Google Scholar 

  • Parsons I (1980) Alkali-feldspar and Fe–Ti oxide exsolution textures as indicators of the distribution and subsolidus effects of magmatic ‘water’ in the Klokken layered syenite intrusion, South Greenland. Trans R Soc Edinb Earth Sci 71:1–12

    Google Scholar 

  • Parsons I (1981) The Klokken gabbro–syenite complex, South Greenland: quantitative interpretation of mineral chemistry. J Petrol 22:233–260

    Google Scholar 

  • Parsons I, Becker SM (1986) High temperature fluid–rock interactions in a layered syenite pluton. Nature 321:764–769. doi:10.1038/321764a0

    Article  Google Scholar 

  • Parsons I, Becker SM (1987) Layering, compaction and post-magmatic processes in the Klokken intrusion. In: Parsons I (ed) Origins of igneous layering. Reidel, Dordrecht, pp 29–92

    Google Scholar 

  • Parsons I, Brown WL (1984) Feldspars and the thermal history of igneous rocks. In: Brown WL (ed) Feldspars and feldspathoids. Structures, properties and occurrences. Reidel, Dordrecht, pp 317–371

    Google Scholar 

  • Parsons I, Lee MR (2000) Alkali feldspars as microtextural markers of fluid flow. In: Stober I, Bucher K (eds) Hydrogeology of crystalline rocks. Kluwer Academic Publishers, Dordrecht, pp 27–50

    Google Scholar 

  • Parsons I, Rex DC, Guise P, Halliday AN (1988) Argon-loss by alkali feldspars. Geochim Cosmochim Acta 52:1097–1112. doi:10.1016/0016-7037(88)90264-5

    Article  Google Scholar 

  • Parsons I, Mason RA, Becker SM, Finch AA (1991) Biotite equilibria and fluid circulation in the Klokken intrusion. J Petrol 32:1299–1333

    Google Scholar 

  • Parsons I, Steele DA, Lee MR, Magee CW (2008a) Titanium as a cathodoluminescence activator in alkali feldspars. Am Mineral (in press)

  • Parsons I, Allen C, Magee CW, Shelley JMG, Lee MRL (2008b) Mutual replacement reactions in alkali feldspars II: trace element partitioning and geothermometry. Contrib Mineral Petrol. doi:10.1007/s00410-008-0358-1

  • Pearce TH (1994) Recent work on oscillatory zoning in plagioclase. In: Parsons I (ed) Feldspars and their reactions. Kluwer, Dordrecht, pp 313–349

    Google Scholar 

  • Prieto M, Putnis A, Fernandezdiaz L (1993) Crystallization of solid-solutions from aqueous solutions in a porous-medium–zoning in (Ba, Sr)SO4. Geol Mag 130:289–299

    Article  Google Scholar 

  • Putnis A (2002) Mineral replacement reactions: from macroscopic observations to microscopic mechanisms. Mineral Mag 66:689–708. doi:10.1180/0026461026650056

    Article  Google Scholar 

  • Putnis CV, Mezger K (2004) A mechanism of mineral replacement: isotope tracing in the model system KCl–KBr–H2O. Geochim Cosmochim Acta 68:2839–2848. doi:10.1016/j.gca.2003.12.009

    Article  Google Scholar 

  • Putnis A, Fernandezdiaz L, Prieto M (1992) Experimentally produced oscillatory zoning in the (Ba, Sr)SO4 solid solution. Nature 358:743–745. doi:10.1038/358743a0

    Article  Google Scholar 

  • Putnis A, Prieto M, Fernandezdiaz L (1995) Fluid supersaturation and crystallization in porous-media. Geol Mag 132:1–13

    Google Scholar 

  • Putnis A, Hinrichs R, Putnis CV, Golla-Schindler U, Collins LG (2007) Hematite in porous red-clouded feldspars: evidence of large-scale crustal fluid–rock interaction. Lithos 95:10–18. doi:10.1016/j.lithos.2006.07.004

    Article  Google Scholar 

  • Putnis CV, Tsukamoto K, Nishimura Y (2005) Direct observations of pseudomorphism: compositional and textural evolution at a fluid–solid interface. Am Mineral 90:1909–1912. doi:10.2138/am.2005.1990

    Article  Google Scholar 

  • Robin P-YF (1974) Stress and strain in cryptoperthite lamellae and the coherent solvus of alkali feldspars. Am Mineral 59:1299–1318

    Google Scholar 

  • Shmulovich KI, Landwehr D, Simon K, Heinrich W (1999) Stable isotope fractionation between liquid and vapour in water-salt systems up to 600 degrees C. Chem Geol 157:343–354. doi:10.1016/S0009-2541(98)00202-2

    Article  Google Scholar 

  • Smith JV, Brown WL (1988) Feldspar minerals, vol 1. Springer, Berlin

    Google Scholar 

  • Taylor HP Jr, Forester RW (1971) Low-O18 igneous rocks from the intrusive complexes of Skye, Mull and Ardnamurchan, Western Scotland. J Petrol 12:465–498

    Google Scholar 

  • Teertstra DK, Cerný P, Hawthorne FC, Pier J, Wang L-M, Ewing RC (1998) Rubicline, a new feldspar from San Piero in Campo, Elba, Italy. Am Mineral 83:1335–1339

    Google Scholar 

  • Thompson JB, Waldbaum DR (1969) Analysis of the two-phase region halite–sylvite in the system NaCl–KCl. Geochim Cosmochim Acta 33:671–690. doi:10.1016/0016-7037(69)90114-8

    Article  Google Scholar 

  • Waldron KA, Parsons I (1992) Feldspar microtextures and multistage thermal history of syenites from the Coldwell Complex, Ontario. Contrib Mineral Petrol 111:222–234. doi:10.1007/BF00348953

    Article  Google Scholar 

  • Waldron K, Parsons I, Brown WL (1993) Solution–redeposition and the orthoclase–microcline transformation: evidence from granulites and relevance to 18O exchange. Mineral Mag 57:687–695. doi:10.1180/minmag.1993.057.389.13

    Article  Google Scholar 

  • Waldron K, Lee MR, Parsons I (1994) The microstructure of perthitic alkali feldspars revealed by hydrofluoric acid etching. Contrib Mineral Petrol 116:360–364. doi:10.1007/BF00306504

    Article  Google Scholar 

  • Walker FDL, Lee MR, Parsons I (1995) Micropores and micropermeable texture in alkali feldspars: geochemical and geophysical implications. Mineral Mag 59:507–536. doi:10.1180/minmag.1995.059.396.12

    Article  Google Scholar 

  • Wen SX, Nekvasil H (1994) Solvcalc—an interactive graphics program package for calculating the ternary feldspar solvus and for 2-feldspar geothermometry. Comput Geosci 20:1025–1040. doi:10.1016/0098-3004(94)90039-6

    Article  Google Scholar 

  • Willaime C, Brown WL (1974) A coherent elastic model for the determination of the orientation of exsolution boundaries: application to the feldspars. Acta Crystallogr A 30:316–331. doi:10.1107/S0567739474010783

    Article  Google Scholar 

  • Wood BJ, Walther JV (1983) Rates of hydrothermal reactions. Science 222:413–415. doi:10.1126/science.222.4622.413

    Article  Google Scholar 

  • Worden RH, Walker FDL, Parsons I, Brown WL (1990) Development of microporosity, diffusion channels and deuteric coarsening in perthitic alkali feldspars. Contrib Mineral Petrol 104:507–515. doi:10.1007/BF00306660

    Article  Google Scholar 

  • Yund RA (1974) Coherent exsolution in the alkali feldspars. In: Hofmann AW, Giletti BJ, Yoder HS Jr, Yund Ra (eds) Geochemical transport and kinetics. Carnegie Institution of Washington Publication, vol 634, pp 173–184

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Acknowledgments

The original mapping of the Klokken intrusion was carried out by the first author on behalf of Grønlands Geologiske Undersøgelse in 1971. The present work was funded by the Natural Environment Research Council under grant NER/A/S/2001/01099. We thank Paul Edwards and Robert Martin (Strathclyde) for their help with acquisition and interpretation of the hyperspectral CL datasets and Nicola Cayzer and Tim Ivanic (Edinburgh) for SEM work. The LA-ICPMS analyses, which are the main subject of Part II, were acquired at the Australian National University, Canberra, with the kind help of Charles Magee, Charlotte Allen and Michael Shelley.

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Correspondence to Ian Parsons.

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Communicated by J. Blundy.

This paper and the Part II are dedicated in memory of J.V. Smith and W.L. Brown, both of whom died in 2007, in acknowledgement of their unrivalled contributions to the study of the feldspar minerals over more than half a century.

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Parsons, I., Lee, M.R. Mutual replacement reactions in alkali feldspars I: microtextures and mechanisms. Contrib Mineral Petrol 157, 641–661 (2009). https://doi.org/10.1007/s00410-008-0355-4

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