Skip to main content

Advertisement

Log in

Petrogenesis of the anorthosite-chromitite association: crystal-chemical and petrological insights from the Rum Layered Suite, NW Scotland

  • Original Paper
  • Published:
Contributions to Mineralogy and Petrology Aims and scope Submit manuscript

Abstract

Thirteen Cr-bearing spinels from major horizons of magma replenishment in the open-system Rum Layered Suite have been analysed by X-ray single crystal diffraction and electron microprobe analyses. On the basis of the structural parameters and the chemistry of these spinels the so-called Rum trend, in which Al-content increases at the expense of Cr and Fe3+, has been easily recognised. In addition, natural spinels with Fe3+ content similar to synthetic spinels on the MgCr2O4–MgFe2O4 join have been analysed for the first time. Layers of chromitite, anorthosite and peridotite situated within several cm of one another have yielded different intracrystalline exchange temperatures using an intercrystalline spinel-olivine thermometer. The Rum anorthosite Cr-spinels are interpreted as having crystallised within the cumulus pile following rejuvenation of the crystal mush. Their low Al-content is a function of simultaneous plagioclase crystallisation, reducing the amount of Al3+ present for the Cr-spinel. By contrast, Cr-spinels in well-known Archean anorthosites (e.g. Ujaragssuit nunât and Fiskenæsset, western Greenland) and Sittampundi (southern India) are very aluminous in composition, attributed to crystallisation of Cr-spinel from high-alumina basalts in lower crustal magma chambers and linked to the control exerted by plagioclase crystallisation on Al content of the melt, in the absence of clinopyroxene crystallisation. The compositional differences between the Rum anorthosite Cr-spinels and the Fiskenæsset and Sittampundi Cr-spinels suggest that postcumulus reaction of Cr-spinel and melt to low (800–900°C) temperatures, as invoked for the Rum crystals, may not have been as important a process in the Archean anorthosites.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6
Fig. 7
Fig. 8

Similar content being viewed by others

References

  • Andreozzi GB, Bosi Z, Garramone F (2001) Synthetic spinels in the (Mg, Fe2 + , Zn)(Al, Fe3 +)2O4 system: II preliminary chemical and structural data of hercynite and magnesioferrite samples. Per Mineral 70:193–204

    Google Scholar 

  • Ballhaus C, Berry RF, Green DH (1991) High pressure experimental calibration of the olivine-orthopyroxene-spinel oxygen geobarometer: implications for the oxidation state of the upper mantle. Contrib Mineral Petrol 107:27–40

    Article  Google Scholar 

  • Barnes SJ (1998) Chromite in komatiites, 1. Magmatic controls on crystallization and composition. J Petrol 39:1689–1720

    Article  Google Scholar 

  • Barnes SJ, Roeder PL (2001) The range of spinel compositions in terrestrial mafic and ultramafic rocks. J Petrol 42:2279–2302

    Article  Google Scholar 

  • Basso R, Comin-Chiaramonti P, Della Giusta A, Flora O (1984) Crystal chemistry of four Mg-Fe-Al-Cr spinels from the Balmuccia peridotite (Western Italian Alps). N Jb Min Abh 150:1–10

    Google Scholar 

  • Bosi F, Andreozzi GB, Ferrini V, Lucchesi S (2004) Behavior of cation vacancy in kenotetrahedral Cr-spinels from Albanian eastern belt ophiolites. Am Min 89:1367–1373

    Google Scholar 

  • Brown GM (1956) The layered ultrabasic rocks of Rhum, Inner Hebrides. Philos Trans R Soc B240:1–53

    Google Scholar 

  • Carbonin S, Russo U, Della Giusta A (1996) Cation distribution in some natural spinels from X-ray diffraction and Mössbauer spectroscopy. Mineral Mag 60:355–368

    Article  Google Scholar 

  • Carbonin S, Menegazzo G, Lenaz D, Princivalle F (1999) Crystal chemistry of two detrital Cr-spinels with unusual low values of oxygen positional parameter: oxidation mechanism and possible clues to their origin. N Jb Min Mh 359–371

  • Carraro A (2003) Crystal chemistry of Cr-spinels from a suite of spinel peridotite mantle xenoliths from the Predazzo Area (Dolomites, Northern Italy). Eur J Mineral 15:681–688

    Article  Google Scholar 

  • Della Giusta A, Princivalle F, Carbonin S (1986) Crystal chemistry of a suite of natural Cr-bearing spinels with 0.15 < Cr < 1.07. N Jb Mineral Abh 155:319–330

    Google Scholar 

  • Della Giusta A, Princivalle F, Carbonin S (1987) Crystal structure and cation distribution in some natural magnetites. Mineral Petrol 37:315–321

    Article  Google Scholar 

  • Della Giusta A, Carbonin S, Ottonello G (1996) Temperature-dependant disorder in a natural Mg–Al–Fe2+–Fe3+–spinel. Mineral Mag 60:603–616

    Article  Google Scholar 

  • Dick HJB, Bullen T (1984) Chromian spinel as a petrogenetic indicator in abyssal and alpine-type peridotites and spatially associated lavas. Contrib Mineral Petrol 86:54–76

    Article  Google Scholar 

  • Dunham AC, Wilkinson FCF (1985) Sulphide droplets and the Unit 11/12 chrome-spinel band, Rhum: a mineralogical study. Geol Mag 122:539–548

    Article  Google Scholar 

  • Emeleus CH, Cheadle MJ, Hunter RH, Upton BGJ, Wadsworth WJ (1996) The rum layered suite. In: Cawthorn RG (ed) Layered igneous rocks. Elsevier, Amsterdam, pp 403–440

    Google Scholar 

  • Hamilton MA, Pearson DG, Thompson RN, Kelley SP, Emeleus CH (1998) Rapid eruption of Skye lavas inferred from precise U–Pb and Ar–Ar dating of the Rum and Cuillin plutonic complexes. Nature 394:260–263

    Article  Google Scholar 

  • Henderson P (1975) Reaction trends shown by chrome-spinels of the Rhum layered intrusion. Geochim Cosmochim Acta 39:1035–1044

    Article  Google Scholar 

  • Henderson P, Suddaby P (1971) The nature and origin of chrome-spinel of the Rhum layered intrusion. Contrib Mineral Petrol 33:21–31

    Article  Google Scholar 

  • Henderson P, Wood RJ (1981) Reaction relationships of chrome-spinels in igneous rocks–further evidence from the layered intrusions of Rhum and Mull, Inner Hebrides, Scotland. Contrib Mineral Petrol 78:225–229

    Article  Google Scholar 

  • Holness MB, Hallworth MA, Woods A, Sides RE (2007) Infiltration metasomatism of cumulates by intrusive magma replenishment: the Wavy Horizon, Isle of Rum, Scotland. J Petrol 48:563–587

    Article  Google Scholar 

  • Irvine TN (1967) Chromian spinel as a petrogenetic indicator. Part 2. Petrologic applications. Can J Earth Sci 4:71–103

    Article  Google Scholar 

  • Irvine TN (1977) Origin of chromitite layers in the Muskox Intrusion and other stratiform intrusions: a new interpretation. Geology 5:273–277

    Article  Google Scholar 

  • Kamenetsky VS, Crawford AJ, Meffre S (2001) Factors controlling chemistry of magmatic spinel: an empirical study of associated olivine, Cr-spinel and melt inclusions from primitive rocks. J Petrol 42:655–671

    Article  Google Scholar 

  • Lavina B, Salviulo G, Della Giusta A (2002) Cation distribution and structure modeling of spinel solid solutions. Phys Chem Minerals 29:10–18

    Article  Google Scholar 

  • Lenaz D, Kamenetsky V, Crawford AJ, Princivalle F (2000) Melt inclusions in detrital spinel from SE Alps (Italy-Slovenia): a new approach to provenance studies of sedimentary basins. Contrib Mineral Petrol 139:748–758

    Article  Google Scholar 

  • Lenaz D, Carbonin S, Gregoric M, Princivalle F (2002) Crystal chemistry and oxidation state of one euhedral Cr-spinel crystal enclosed in a bauxite layer (Trieste Karst: NE Italy): some considerations on its depositional history and provenance. N Jb Mineral Mh 193–206

  • Lenaz D, Andreozzi GB, Mitra S, Bidyananda M, Princivalle F (2004a) Crystal chemical and 57Fe Mössbauer study of chromite from the Nuggihalli schist belt (India). Mineral Petrol 80:45–57

    Article  Google Scholar 

  • Lenaz D, Skogby H, Princivalle F, Hålenius U (2004b) Structural changes and valence states in the MgCr2O4-FeCr2O4 solid solution series. Phys Chem Minerals 31:633–642

    Article  Google Scholar 

  • Lenaz D, Skogby H, Princivalle F, Hålenius U (2006) The MgCr2O4–MgFe2O4 solid solution series: effects of octahedrally coordinated Fe3+ on T–O bond lengths. Phys Chem Minerals 33:465–474

    Article  Google Scholar 

  • Lenaz D, Braidotti R, Princivalle F, Garuti G, Zaccarini F (2007) Crystal chemistry and structural refinement of chromites from different chromitite layers and xenoliths of the Bushveld Complex. Eur J Mineral 19:599–609

    Article  Google Scholar 

  • Lenaz D, Logvinova AM, Princivalle F, Sobolev NV (2009) Structural parameters of chromite included in diamonds and kimberlites from Siberia: a new tool for discriminating ultramafic source. Am Mineral 94:1067–1070

    Article  Google Scholar 

  • Lenaz D, De Min A, Garuti G, Zaccarini F, Princivalle F (2010) Crystal chemistry of Cr-spinels from the lherzolite mantle peridotite of Ronda (Spain). Am Mineral 95:1323–1328

    Article  Google Scholar 

  • Lenaz D, Garuti G, Zaccarini F, Cooper RW, Princivalle F (2011) The Stillwater Complex chromitites: the response of cromite crystal chemistry to magma injection. Geologica Acta (in press)

  • Lindsley DH (1976) The crystal chemistry and structure of oxide minerals as exemplified by the Fe-Ti oxides. Rev Mineral 3:L1–L60 (In Rumble III D (Ed))

    Google Scholar 

  • Lodya JA, Pollak H, Nell J, Albers A (1994) Mössbauer spectroscopy and magnetic susceptibility studies of natural chromites. Hyperfine Interact 93:1789–1794

    Article  Google Scholar 

  • Lucchesi S, Bosi F, Pozzuoli A (2010) Geothermometric study of Mg-rich spinels from the Somma-Vesuvius volcanic Complex (Naples, Italy). Am Mineral 95:617–621

    Article  Google Scholar 

  • McClurg JE (1982) Petrology and evolution of the northern part of the Rhum Ultrabasic Complex. Ph.D. Thesis, University of Edinburgh

  • Mitra S, Bidyananda M, Kumar Samanta A (2006) Cation distribution in Cr-spinels from the Sittampundi layered complex and their intracrystalline thermodynamics. Curr Sci 90:435–439

    Google Scholar 

  • Morse SA (1982) A partisan review of Proterozoic anorthosites. Am Mineral 67:1087–1100

    Google Scholar 

  • Morse SA (1986) Convection in aid of adcumulus growth. J Petrol 27:1183–1214

    Google Scholar 

  • Nakatsuka A, Ueno H, Nakayama N, Mizota T, Maekawa H (2004) Single-crystal X-ray diffraction study of cation distributiom in MgAl2O4–MgFe2O4 spinel solid solution. Phys Chem Minerals 31:278–287

    Google Scholar 

  • Naldrett AJ, Wilson A, Kinnaird J, Chunnett G (2009) PGE Tenor and metal ratios within and below the Merensky Reef, Bushveld Complex: implications for its genesis. J Petrol 50:625–659

    Article  Google Scholar 

  • Nédli Zs, Princivalle F, Lenaz D, Tóth TM (2008) Crystal chemistry of clinopyroxene and spinel from mantle xenoliths hosted in Late Mesozoic lamprophyres (Villány Mts, S Hungary). N Jb Mineral Abh 185:1–10

    Article  Google Scholar 

  • Nell J, Pollak H (1994) Characterization of natural chromite ((Mg, FeII)(Al, FeIII, Cr)2O4) samples from the Bushveld Complex, South Africa. Hyperfine Interact 84:427–431

    Article  Google Scholar 

  • Nell J, Pollak H (1998) Cation to anion stoichiometry of chromite: a new perspective. Hyperfine Interact 111:309–312

    Article  Google Scholar 

  • North ACT, Phillips DC, Scott-Mattews F (1968) A semi-empirical method of absorption correction. Acta Crystallogr A24:351–352

    Google Scholar 

  • O’Driscoll B, Donaldson CH, Daly JS, Emeleus CH (2009a) The roles of melt infiltration and cumulate assimilation in the formation of anorthosite and a Cr-spinel seam in the Rum Eastern Layered Intrusion, NW Scotland. Lithos 111:6–20

    Article  Google Scholar 

  • O’Driscoll B, Day JMD, Daly JS, Walker RJ, McDonough WF (2009b) Rhenium-osmium isotopes and platinum-group elements in the Rum Layered Suite, Scotland: Implications for Cr-spinel seam formation and the composition of the Iceland mantle anomaly. Earth Planet Sci Lett 286:41–51

    Article  Google Scholar 

  • O’Driscoll B, Emeleus CH, Donaldson CH, Daly JS (2010) Cr-spinel seam petrogenesis in the Rum Layered Suite, NW Scotland: cumulate assimilation and in situ crystallisation in a deforming crystal mush. J Petrol 51:1171–1201

    Article  Google Scholar 

  • Prince E (2004) International tables for X-ray crystallography. Volume C: mathematical, physical and chemical tables, 3rd edn. Sprinter, Dordrecht, The Netherlands

    Google Scholar 

  • Princivalle F, Della Giusta A, Carbonin S (1989) Comparative crystal chemistry of spinels from some suites of ultramafic rocks. Mineral Petrol 40:117–126

    Article  Google Scholar 

  • Princivalle F, Della Giusta A, De Min A, Piccirillo EM (1999) Crystal chemistry and significance of cation ordering in Mg-Al rich spinels from high grade hornfels (Predazzo-Monzoni, NE Italy). Mineral Mag 63:257–262

    Google Scholar 

  • Quintiliani M, Andreozzi GB, Graziani G (2006) Fe2+ and Fe3+ quantification of different approaches and fO2 estimation for Albanian Cr-spinels. Am Mineral 91:907–916

    Article  Google Scholar 

  • Roeder PL (1994) Chromite: from the Fiery rain of chondrules to the Kilauea Iki lava lake. Can Mineral 32:729–746

    Google Scholar 

  • Roeder PL, Campbell IH (1985) The effects of postcumulus reactions on compositions of Chrome-spinels from the Jimberlana intrusion. J Petrol 26:763–786

    Google Scholar 

  • Roeder PL, Reynolds I (1991) Crystallization of chromite and chromium solubility in basaltic melts. J Petrol 32:909–934

    Google Scholar 

  • Rollinson HR (1995) Compositions and tectonic settings of chromitite deposits through time–a discussion. Econ Geol 90:2091–2092

    Article  Google Scholar 

  • Rollinson HR, Appel PWU, Frei R (2002) A metamorphosed, Early Archean chromitite from West Greenland: implications for the genesis of Archaean anorthositic chromitites. J Petrol 43:2143–2170

    Article  Google Scholar 

  • Rollinson HR, Reid C, Windley B (2010) Chromitites from the Fiskenæsset anorthositic complex, West Greenland: clues to late Archaean mantle processes. In: Kusky TM, Zhai M-G, Xiao W (eds) The evolving continents: understanding processes of continental growth, vol 338. Geological Society, London, pp 197–212 (Special Publications)

  • Sack RO (1982) Spinels as petrogenetic indicators: activity-composition relations at low pressures. Contrib Mineral Petrol 79:169–186

    Article  Google Scholar 

  • Sack RO, Ghiorso MS (1991) Chromian spinels as petrogenetic indicators: thermodynamics and petrological applications. Am Mineral 76:827–847

    Google Scholar 

  • Schoenberg R, Kruger FJ, Nagler TF, Meisel T, Kramers JD (1999) PGE enrichment in chromitite layers and the Merensky Reef of the western Bushveld Complex; a Re–Os and Rb–Sr isotope study. Earth Planet Sci Lett 172:49–64

    Google Scholar 

  • Sheldrick GM (1997) SHELX-97 Program for crystal structure refinement. University of Gottingen, Germany

    Google Scholar 

  • Tepley FJ, Davidson JP (2003) Mineral-scale Sr-isotope constraints on magma evolution and chamber dynamics in the Rum layered intrusion, Scotland. Contrib Mineral Petrol 145:628–641

    Article  Google Scholar 

  • Tokonami M (1965) Atomic scattering factor for O−2. Acta Crystallogr 19:486

    Article  Google Scholar 

  • Uchida H, Lavina B, Downes RT, Chesley J (2005) Single-crystal X-ray diffraction of spinels from the San Carlos Volcanic Field, Arizona: Spinel as a geothermometer. Am Mineral 90:1900–1908

    Article  Google Scholar 

  • Upton BGJ, Skogvaard AC, McClurg J, Kirstein L, Cheadle M, Emeleus CH, Wadsworth WJ, Fallick AE (2002) Picritic magmas and the Rum ultramafic complex, Scotland. Geol Mag 139:437–452

    Article  Google Scholar 

  • Wager LR, Brown GM (1968) Layered igneous rocks. Oliver and Boyd, Edinburgh, p 588

    Google Scholar 

Download references

Acknowledgments

The Italian C.N.R. financed the installation and maintenance of the microprobe laboratory in Padova. R. Carampin and L. Tauro are kindly acknowledged for technical support. This work was supported with MURST and Trieste University grants to FP (Studio dello stato di ossidazione e degli elementi in tracce in spinelli a Fe e Cr: implicazioni petrologiche. PRIN 2008). We are grateful to reviewers Stephen Barnes and Mark Ghiorso and editor Chris Ballhaus for constructive criticism that greatly improved the paper.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Davide Lenaz.

Additional information

Communicated by C. Ballhaus.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Lenaz, D., O’Driscoll, B. & Princivalle, F. Petrogenesis of the anorthosite-chromitite association: crystal-chemical and petrological insights from the Rum Layered Suite, NW Scotland. Contrib Mineral Petrol 162, 1201–1213 (2011). https://doi.org/10.1007/s00410-011-0647-y

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00410-011-0647-y

Keywords

Navigation