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Mineralogical and geochemical characterisation of warm-water, shallow-marine glaucony from the Tertiary of the London Basin

Published online by Cambridge University Press:  02 January 2018

Jennifer Huggett*
Affiliation:
Oast House, Sandy Cross, Heathfield, E Sussex TN21 8QP, UK The Natural History Museum, Cromwell Road, London SW7 5BD, UK
Jacob Adetunji
Affiliation:
Department of Natural Science, University of Derby, DE22 1GB, UK
Fred Longstaffe
Affiliation:
Department of Earth Sciences, The University of Western Ontario, London, N6A 5B7, Canada
David Wray
Affiliation:
Department of Pharmaceutical, Chemical and Environmental Sciences, University of Greenwich, LondonME4 4TB, UK

Abstract

Glaucony is present in the Palaeocene sediments of the London Basin, from the Thanet Sand Formation to the gravel beds at the base of the Lower Mottled Beds of the Reading Formation. The Upnor Formation glaucony is a rare example of formation in warm, shallow, brackish water and this, combined with the ready availability of fresh material from boreholes, make this study important in developing our understanding of this mineral. Glaucony comprises up to 50% of the Upnor Formation, a grey to green sandstone, of variable thickness and composition, which was deposited in awarm, shallow, marine to estuarine environment, ∼55.6–56.2 Ma. Using morphological criteria, X-ray diffraction data and K+ abundance, the Upnor glaucony may be defined as evolved. The underlying shallow marine Thanet Sand contains <5% of nascent to slightly evolved glaucony. The rare earth element (REE) data for the Upnor Formation suggest more than one source for the sediment from which the Upnor glaucony formed, while the Thanet REE data are consistent with a large detrital clay component.

In the Upnor Formation, the large proportion of glaucony that occurs as granule fragments rather than whole granules, and the high-energy estuarine to shallow-marine environment of deposition, are indicative of reworking. The Upnor glaucony is inferred to be intraformationally reworked, rather than derived from the Thanet Sand Formation. The glaucony may have formed in sediments deposited away from the main estuarine channel, and been subsequently reworked into higher-energy sediments.Warm seas with freshwater mixing are more typically characteristic of verdine formation than of glaucony. The shallow, brackish environment of deposition suggests that there is not a clear distinction between the environmental requirements of verdine (or odinite) and glaucony (or glauconite), as is often proposed. The highly fractured, delicate nature of some granules indicates that they have experienced somematuration in situ, after reworking.

The oxygen and hydrogen isotopic compositions of Upnor Formation shark teeth and glaucony point to formation in low-salinity water at ∼23 ± 3°C, also consistent with formation in the Upnor Formation, rather than in a fully marine sediment and subsequent reworking. A higher than normal temperature of formation may have increased the rate of evolution of glaucony.

Our multidisciplinary study considers many of the factors relating to depositional environment that must be considered when glaucony-rich facies are encountered in comparable palaeo-environmental settings elsewhere in the geological record.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2017

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References

Ali, J.R. & Jolley, D.W. (1996) Chronostratigraphic framework for the Thanetian and lower Ypresian deposits of southern England. Pp. 129140 in: Correlation of the Early Palaeogene in Northwest Europe (R.W.O. Knox, R.M. Corfield & R.E. Dunay, editors). Geological Society of London Special Publication 101, Geological Society, London.Google Scholar
Amorosi, A. & Centineo, M.C. (1997) Glaucony from the Eocene of the Isle of Wight (southern UK): implications for basin analysis. Journal of the Geological Society London, 154, 887896.CrossRefGoogle Scholar
Bailey, S.W. (1980) Summary of recommendations of AIPEA nomenclature committee. Clays and Clay Minerals, 28, 7378.Google Scholar
Bancroft, G.M. (1973) Mössbauer spectroscopy: an Introduction for Inorganic chemists and Geochemists. McGraw Hill, London, 251 pp.Google Scholar
Blondeau, A. & Pomerol, C. (1968) A contribution to the sedimentological study of the Palaeogene of England. Proceedings of the Geologists’ Association, 79, 44155.Google Scholar
Borthwick, J. & Harmon, R.S. (1982) A note regarding ClF3 as an alternative to BrF5 for oxygen isotope analysis. Geochimica et Cosmochimica Acta, 46, 16651668.Google Scholar
Brindley, G.W. & Brown, G. (1980) Crystal Structures of Clay Minerals and their X-ray Identification. Monograph No. 5, Mineralogical Society, London, 495 pp.CrossRefGoogle Scholar
Capuano, R.M. (1992) The temperature dependence of hydrogen isotope fractionation between clay minerals and water: Evidence from a geopressured system. Geochimica et Cosmochimica Acta, 56, 25472554.Google Scholar
Charles, A.J., Condon, D.J., Harding, I.C., Pälike, H., Marshall, J.E.A., Cui, Y., Kump, L. & Croudace, I.W. (2011) Constraints on the numerical age of the Paleocene-Eocene boundary. Geochemistry Geophysics Geosystems, 12, 119.CrossRefGoogle Scholar
Clayton, R.N. & Mayeda, T.K. (1963) The use of bromine pentafluoride in the extraction of oxygen from oxides and silicates for isotopic analysis. Geochimica et Cosmochimica Acta, 27, 4352.Google Scholar
Compagno, L.J.V. (2001) Sharks of the World. An Annotated and Illustrated Catalogue of Shark Species Known to Date. Volume 2. Bullhead, Mackerel and Carpet Sharks (Heterodontiformes, Lamniformes and Orectolobiformes). FAO Species Catalogue for Fishery Purposes. Food and Agriculture Organization of the United Nations, Rome, 269 pp.Google Scholar
Coplen, T.B. (1996) New guidelines for reporting stable hydrogen, carbon, and oxygen isotope-ratio data. Geochimica et Cosmochimica Acta, 60, 33593360.CrossRefGoogle Scholar
Coplen, T.B., Brand, W.A., Gehre, M., Gröning, M., Meijer, H.A.J., Toman, B. & Verkouteren, R.M. (2006) After two decades a second anchor for the VPDB δ13C scale. Rapid Communications in Mass Spectrometry, 20, 31653166.Google Scholar
Courbe, C. Velde, B. & Meunier, A. (1981) Weathering of glauconites; reversal of the glauconitization process in a soil profile in western France. Clay Minerals, 16, 231243.Google Scholar
Craig, H. (1961) Isotopic variations in meteoric waters. Science, 133, 17021703.CrossRefGoogle ScholarPubMed
Drits, V.A., Dainyak, L.G., Muller, F., Besson, G. & Manceau, A. (1997) Isomorphous cation distribution in celadonites, glauconites and Fe-illites determined by Infrared, Mössbauer and EXAFS spectroscopy. Clay Minerals, 32, 153180.Google Scholar
El Albani, A., Meunier, A. & Fürsich, F. (2005) Unusual occurrence of glauconite in a shallow lagoonal environment (Lower Cretaceous, Northern Aquitaine Basin, SW France). Terra Nova, 17, 537544.Google Scholar
Ellison, R.A., Ali, J.R., Hine, N.M. & Jolley, D.W. (1996) Recognition of Chron C25n in the upper Paleocene Upnor Formation of the London Basin, UK. Pp. 185193 in: Correlation of the Early Palaeogene in Northwest Europe (R.W.O. Knox, R.M. Corfield & R.E. Dunay, editors). Special Publications 101, Geological Society, London.CrossRefGoogle Scholar
Ellison, R.A., Woods, M.A., Allen, D.J., Forster, A., Pharoah, T.C. & King, C. (2004) Geology of London; special memoir for 1:50 000 geological sheets 256 (north London), 257 (Romford), 270 (south London) and 271 (Dartford) (England and Wales). Memoir of the British Geological Survey, 114 pp.Google Scholar
Fanning, D.S., Rabenhorst, M.C., May, L. & Wagner, D.P. (1989) Oxidation state of iron in glauconite from oxidized and reduced zones of soil-geologic columns. Clays and Clay Minerals, 37, 5964.CrossRefGoogle Scholar
Firsching, F.H. (1961) Precipitation of silver phosphate from homogeneous solution. Analytical Chemistry, 33, 873874.CrossRefGoogle Scholar
Fischer, J., Schneider, J.W., Voigt, S., Joachimski, M.M., Tichomirowa, M., Tütken, T., Götze, J. & Berner, U. (2013) Oxygen and strontium isotopes from fossil shark teeth: Environmental and ecological implications for Late Palaeozoic European basins. Chemical Geology, 342, 4462.Google Scholar
Godfrey, J.D. (1962) The deuterium content of hydrous minerals. Geochimica et Cosmochimica Acta, 26, 12141238.Google Scholar
Harwood, I.E., Dennis, D.F., Marca, A.D., Pilling, G.M. & Millner, R. (2008) The oxygen isotope composition of water masses within the North Sea. Estuarine, Coastal and Shelf Science, 78, 353359.CrossRefGoogle Scholar
Hesselbo, S.P. & Huggett, J.M. (2001) Glaucony in ocean-margin sequence stratigraphy (mid-Cenozoic, offshore New Jersey, USA, ODP, Leg 174A). Journal of Sedimentary Petrology, 74, 599607.Google Scholar
Hillier, S. (1995) Erosion, sedimentation and sedimentary origin of clays. Pp. 162219 in: Origin and Mineralogy of Clays (B. Velde, editor). Springer, Berlin, Heidelberg, New York.Google Scholar
Hine, N.M. (1994) Calcareous nannoplankton assem-blages from the Thanet Sand Formation in Bradwell Borehole, Essex, England. GFF, 116, 5455.Google Scholar
Huggett, J.M. & Cuadros I (2010) Glauconite formation in lacustrine/palaeosol sediments, Isle of Wight (Hampshire basin), UK. Clay Minerals, 45, 3550.Google Scholar
Huggett, J.M. & Gale, A.S. (1997) Petrology and palaeoenvironmental significance of glaucony in the Eocene succession at Whitecliff Bay, Hampshire Basin, UK. Journal of the Geological Society, 154, 897912.Google Scholar
Huggett, J.M. & Gale, A.S. (1998) Petrography and diagenesis of the Thames Group at Whitecliff Bay, Isle of White, UK. Proceedings of the Geologists Association, 109, 99113.Google Scholar
Huggett, J.M. & Laenen, B. (1996) Green clays from the lower Oligocene of Aardebrug, Belgium, a re-evaluation. Clay Minerals, 31, 557562.Google Scholar
Huggett, J.M., Gale, A.S. & McCarty, D. (2010) Petrology and palaeoenvironmental significance of authigenic iron-rich clays, carbonates and apatite in the Claiborne Group, Middle Eocene, NE Texas. Sedimentary Geology, 228, 119139.Google Scholar
Huggett, J.M., Burley, S.D., Longstaffe, F.J., Saha, S. & Oates, M. (2015) The nature and origin of authigenic chlorite and related cements in Oligo-Miocene reservoir sandstones, Tapti gas fields, Surat Depression, Offshore Western India. Journal of Petroleum Geology, 38, 383409.CrossRefGoogle Scholar
Jarvis, I. & Jarvis, K.E. (1985) Rare-earth element geochemistry of standard sediments: a study using inductively coupled plasma spectrometry. Chemical Geology, 53, 335344.Google Scholar
Jeans, C.V., Wray, D.S., Merriman, R.J. & Fisher, M.J. (2000) Volcanogenic clays in Jurassic and Cretaceous strata of England and the North Sea basin. Clay Minerals, 35, 2555.Google Scholar
Kelly, J.C. & Webb, J.A. (1999) The genesis of glaucony in the Oligo-Miocene Torquay Group, southeastern Australia: petrographic and geochemical evidence. Sedimentary Geology, 125, 99114.Google Scholar
Kemp, S.J., Ellis, M.A., Mountney, I. & Kender, S. (2016) Palaeoclimatic implications of high resolution clay mineral assemblages preceding and across the onset of the Palaeocene-Eocene Thermal Maximum, North Sea Basin. Clay Minerals, 51, 793813.CrossRefGoogle Scholar
Kennett, J.P. & Stott, L.D. (1991) Abrupt deep-sea warming, palaeoceanographic changes and benthic extinctions at the end of the Palaeocene. Nature, 353, 225229.Google Scholar
King, C. (2012) The stratigraphical framework for the Palaeogene successions of the London Basin, UK. British Geological Survey open report OR/12/004, 94 pp.Google Scholar
King, C. (2016) A revised correlation of Tertiary rocks in the British Isles and adjacent areas of NW Europe. Geological Society Special Report Number 27, 719 pp.Google Scholar
Knox, R.W.O'B. (1983) Volcanic ash in the Oldhaven Beds of southeast England and its stratigraphic significance. Proceedings of the Geologists’ Association, 94, 245250.CrossRefGoogle Scholar
Knox, R.W.O'B. (1996) Tectonic controls on sequence development in the Palaeocene and earliest Eocene of southeast England: implications for North Sea stratigraphy. Pp. 209230 in: Sequence Stratigraphy in British Geology (S.P. Hesselbo & D.N. Parkinson, editors). Special Publications 103, Geological Society, London.Google Scholar
Kohn, M.J. & Cerling, T.E. (2002) Stable isotope compositions of biological apatite. Pp. 455488 in: Phosphates. Geochemical, Geobiological, and Materials Importance (M. J. Kohn J. Rakovan & J.M. Hughes, editors). Reviews in Mineralogy and Geochemistry, 48. Mineralogical Society of America, Washington, D.C.Google Scholar
Kyser, T.K. & O'Neil, J.R. (1984) Hydrogen isotope systematics of submarine basalts. Geochimica et Cosmochimica Acta, 48, 21232133.Google Scholar
Lagarec, K. & Rancourt, G.K. (1998) Mössbauer Spectral Analysis Software. Mössbauer Group, Physics Department, University of Ottawa, Canada.Google Scholar
Lécuyer, C., Amiot, R., Touzeau, A. & Trotter, J. (2013) Calibration of the phosphate δ18O thermometer with carbonate-water isotope fractionation equations. Chemical Geology, 347, 217226.Google Scholar
McLennan, S.M. (1989) Rare earth elements in sedimentary rocks: influence of provenance and sedimentary processes. Pp. 169200 in: Geochemistry and Mineralogy of the Rare Earth Elements (B.R. Lipin & G.A. McKay, editors). Reviews in Mineralogy, 21, Mineralogical Society of America, Washington, D.C.Google Scholar
McRae, S.G. (1972) Glauconite. Earth Science Reviews, 8, 397440.Google Scholar
Moore, D.M. & Reynolds, R.C. Jr. (1989) X-ray Diffraction and the Identification and Analysis of Clay Minerals. Oxford University Press, New York, 332 pp.Google Scholar
Morton, A.C. (1982) The provenance and diagenesis of Palaeogene sandstones of southeast England as indicated by heavy mineral analysis. Proceedings of the Geologist's Association, 93, 263274.Google Scholar
Newman, T. (2013) Causes of confined space hypoxia during underground construction in the Lambeth Group beneath London. PhD thesis, University of London, 173 pp.Google Scholar
Odin, G.S. (1988) Glaucony from the Gulf of Guinea. Pp. 225247 in: Green Marine Clays (G.S. Odin, editor). Developments in Sedimentology, 45. Elsevier, Amsterdam.Google Scholar
Odin, G.S. & Fullager, P.D. (1988) Geological significance of the glaucony facies. Pp. 295332 in: Green Marine Clays (G.S. Odin, editor). Developments in Sedimentology, 45. Elsevier, Amsterdam.Google Scholar
Odin, G.S. & Matter, A. (1981) De glauconiarum origine. Sedimentology, 28, 611641.CrossRefGoogle Scholar
Odin, G.S. & Sen Gupta, B.K. (1988) The geological significance of the verdine facies. Pp. 205247 in: Green Marine Clays (G.S. Odin, editor). Developments in Sedimentology, 45. Elsevier, Amsterdam.Google Scholar
Odin, G.S. & Stephan, J.F. (1981) The occurrence of deep-water glaucony from the Eastern Pacific: the result of in situ genesis or subsidence? Pp. 419428 in: Initial Reports of the Deep Sea Drilling Project, V.LXVI(J.S. Watkins & J.C. Moore, editors). US Government Printing Office, Washington D.C., USA.Google Scholar
Odin, G.S., Debenay, J.P. & Masse, J.P. (1988) The verdine facies deposits identified in 1988. Pp. 131159 in: Green Marine Clays (G.S. Odin, editor). Developments in Sedimentology, 45. Elsevier, Amsterdam.CrossRefGoogle Scholar
Odom, E. (1976) Microstructure, mineralogy and chemistry of Cambrian glauconite pellets and glauconite, central USA. Clays and Clay Minerals, 24, 232238.Google Scholar
Powell, J.A., Brinkhuis, H. & Bujak, J.P. (1996) Upper Palaeocene-Lower Eocene dinoflagellate cyst sequence biostratigraphy of south east England. Pp. 145183 in: Correlation of the Early Paleogene in Northwest Europe (R.W.O. Knox, R.M. Corfield & R.E. Dunay, editors). Special Publications 101, Geological Society, London.Google Scholar
Ritchie, J.D. & Hitchen, K. (1996) Early Paleogene offshore igneous activity to the northwest of the UK and its relationship to the North Atlantic Igneous Province. Pp. 6378 in: Correlation of the Early Paleogene in Northwest Europe (R.W.O. Knox, R.M. Corfield & R.E. Dunay, editors). Special Publications 101, Geological Society, London.Google Scholar
Rousset, D., Leclerc, S., Clauer, N., Lancelot, J., Cathelineau, M. & Aranyossy, J.-F. (2004) Age and origin of Albian glauconites and associated clay minerals inferred from a detailed geochemical analysis. Journal of Sedimentary Research, 74, 631642.Google Scholar
Savin, S.M. & Epstein, S. (1970) The oxygen and hydrogen isotope geochemistry of clay minerals. Geochimica et Cosmochimica Acta, 34, 2542.Google Scholar
Schmidt, B. & Andreason, F.P. (2001) Air humidity and lake δ18O during the latest Paleocene-earliest Eocene in France from recent and fossil fresh-water and marine gastropod δ18O, δ13C, and 87Sr/86Sr. Geological Society of America Bulletin, 113, 774789.Google Scholar
Sheppard, S.M.F. & Gilg, H.A. (1996) Stable isotope geochemistry of clay minerals. Clay Minerals, 31, 124.Google Scholar
Skipper, I.A. (1999) The stratigraphy of the Lambeth Group (Paleocene) of South East England. PhD thesis. Imperial College, London, 297 pp.Google Scholar
Sluijs, A., Schouten, S., Pagani, M., Woltering, M., Brinkhuis, H., Jaap, S., Damste, I.S., Dickens, , Huber, M. Reichart, J.-G. et al. (2006) Subtropical Arctic Ocean temperatures during the Palaeocene/Eocene thermal maximum. Nature, 441, 610613.Google Scholar
Stuart-Williams, H.L.Q. & Schwarcz, H.P. (1995) Oxygen isotopic analysis of silver orthophosphate using a reaction with bromine. Geochimica et Cosmochimica Acta, 59, 38373841.Google Scholar
Tóth, E., Weiszburg, T.G., Jeffries, T.E., Williams, C.T., Bartha, A., Bertalan, E. & Cora, I. (2010) Submicroscopic accessory minerals overprinting clay mineral REE patterns (celadonite—glauconite group examples). Chemical Geology, 269, 312328.Google Scholar
Venneman, T.W. & O'Neil, J.R. (1993) A simple and inexpensive method of hydrogen isotope and water analyses of minerals and rocks based on zinc reagent. Chemical Geology, 103, 227234.Google Scholar
Ward, D.J. (1978) The Lower London Tertiary (Palaeocene) succession at Herne Bay, Kent. Report of the Institute of Geological Sciences, 78/10, 17 pp.Google Scholar
Weir, A.H. & Catt, J.A. (1969) The mineralogy of Palaeogene sediments in Northeast Kent (Great Britain). Sedimentary Geology, 3, 1733.Google Scholar
Westerhold, T., Röhl, U., McCarren, H.K. & Zachos, J.C. (2009) Latest on the absolute age of the Paleocene— Eocene Thermal Maximum (PETM): New insights from exact stratigraphic position of key ash layers +19 and -17. Earth and Planetary Science Letters, 287, 412419.Google Scholar
Wiewióra, A., Giresse, P., Petit, S. & Wilamowski, A. (2001) A deep-water glacuonitization process on the Ivory Coast-Ghana marginal ridge (ODP site 959): determination of Fe3+-rich montmorillonite in green grains. Clays and Clay Minerals, 49, 540558.Google Scholar
Wray, D.S. (1995) Origin of clay-rich beds in Turonian chalks from Lower Saxony, Germany — a rare earth element study. Chemical Geology, 119, 161173.Google Scholar
Wray, D.S. (1999) Identification and long-range correl-ation of bentonites in Turonian-Coniacian (Upper Cretaceous) chalks of northwest Europe. Geological Magazine, 136, 361371.Google Scholar
Wray, D.S. & Wood, C.J. (1998) Distinction between detrital and volcanogenic clay-rich beds in Turonian-Coniacian chalks of eastern England. Proceedings of the Yorkshire Geological Society, 52, 95105.Google Scholar
Zachos, J., Pagani, M., Sloan, L., Thomas, E. & Billups, K. (2001) Trends, rythms and aberrations in global climate 65 Ma to present. Science, 292, 686693.Google Scholar
Zacke, A., Voigt, S., Joachimski, M.M., Gale, A.S., Ward, D.J. & Tütken T (2009) Surface water-freshening and high-latitude river discharge in the Eocene North Sea. Journal of the Geological Society, 166, 969980.Google Scholar
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