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Carbon-isotope stratigraphy of the SPICE event (Upper Cambrian) in eastern Laurentia: implications for global correlation and a potential reference section

Published online by Cambridge University Press:  30 October 2018

Karem Azmy*
Affiliation:
Department of Earth Sciences, Memorial University of Newfoundland, St John’s, NL A1B 3X5, Canada
*
Author for correspondence: Karem Azmy, Email: kazmy@mun.ca

Abstract

The δ13C profile from the lower interval of the Martin Point section in western Newfoundland (Canada) spans the Upper Cambrian (uppermost Franconian – lowermost Trempealeauan). The investigated interval (∼110 m) is a part of the Green Point Formation of the Cow Head Group and consists of the upper part of the Tucker Cove Member (topmost part of the Shallow Bay Formation) and the lowermost part of the Martin Point Member (bottom of the Green Point Formation). It is formed of rhythmites of marine carbonates alternating with shales and minor conglomeratic interbeds. Multiscreening petrographic and geochemical techniques have been utilized to evaluate the preservation of the investigated lime mudstones. The δ13C and δ18O values of the sampled micrites (−4.8 ‰ to +1.0 ‰ VPDB and −8.2 ‰ to −5.3 ‰ VPDB, respectively) have insignificant correlation (R2 = 0.01), as similarly do the δ13C values with their Sr counterparts (R2 = 0.07), which supports the preservation of at least near-primary δ13C signatures that can be utilized to construct a reliable high-resolution carbon-isotope profile for global correlations. The δ13C profile exhibits two main negative excursions: a lower excursion (∼4 ‰) that reaches its maximum at the bottom of the section and an upper narrow excursion (∼6 ‰) immediately above the boundary of the Tucker Cove/Martin Point members (Shallow Bay Formation – Green Point Formation boundary). The lower excursion may be correlated with the global SPICE event, whereas the upper excursion may match with a post-SPICE event that has been also recognized in profiles of equivalent sections on different palaeocontinents.

Type
Original Article
Copyright
© Cambridge University Press 2018 

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References

Azmy, K (2018) Carbon-isotope stratigraphy of the uppermost Cambrian in eastern Laurentia: implications for global correlation. Geological Magazine, published online 12 February 2018. doi: 10.1017/S001675681800002X.Google Scholar
Azmy, K, Kendall, K, Brand, U, Stouge, S and Gordon, GW (2015) Redox conditions across the Cambrian–Ordovician boundary: elemental and isotopic signatures retained in the GSSP carbonates. Palaeogeography, Palaeoclimatology, Palaeoecology 440, 440–54.CrossRefGoogle Scholar
Azmy, K, Stouge, S, Brand, U, Bagnoli, G and Ripperdan, R (2014) High-resolution chemostratigraphy of the Cambrian–Ordovician GSSP in western Newfoundland, Canada: enhanced global correlation tool. Palaeogeography, Palaeoclimatology, Palaeoecology 409, 135–44.CrossRefGoogle Scholar
Azmy, K, Stouge, S, Christiansen, JL, Harper, DAT, Knight, I and Boyce, D (2010) Carbon-isotope stratigraphy of the Lower Ordovician succession in Northeast Greenland: implications for correlations with St. George Group in western Newfoundland (Canada) and beyond. Sedimentary Geology 225, 67–81.CrossRefGoogle Scholar
Azomani, E, Azmy, K, Blamey, N, Brand, U and Al-Aasm, I (2013) Origin of lower Ordovician dolomites in eastern Laurentia: controls on porosity and implications from geochemistry. Marine and Petroleum Geology 40, 99–114.CrossRefGoogle Scholar
Bahamonde, JR, Merino-Tomé, OA and Heredis, N (2007) A Pennsylvanian microbial boundstone-dominated carbonate shelf in a distal foreland margin (Picos de Europa Province, NW Spain). Sedimentary Geology 198, 167–93.CrossRefGoogle Scholar
Barnes, CR (1988) The proposed Cambrian–Ordovician global boundary stratotype and point (GSSP) in western Newfoundland, Canada. Geological Magazine 125, 381–414.CrossRefGoogle Scholar
Bartley, JK, Kah, LC, Frank, TD and Lyons, TW (2015) Deep-water microbialites of the Mesoproterozoic Dismal Lakes Group: microbial growth, lithification, and implications for coniform stromatolites. Geobiology 13, 15–32.CrossRefGoogle ScholarPubMed
Brand, U, Logan, A, Bitner, MA, Griesshaber, E, Azmy, K and Buhl, D (2011) What is the ideal proxy of Paleozoic seawater chemistry? Memoirs of the Association of Australasian Palaeontologists 41, 9–24.Google Scholar
Brasier, MD (1993) Towards a carbon isotope stratigraphy of Cambrian System: potential of the Great Basin succession. In High Resolution Stratigraphy (eds Hailwood, EA and Kidd, RB), pp. 341–50. Geological Society of London, Special Publication no. 70.Google Scholar
Buggisch, W, Keller, M and Lehnert, O (2003) Carbon isotope record of Late Cambrian to early Ordovician carbonates of the Argentine Precordillera. Palaeogeography, Palaeoclimatology, Palaeoecology 195, 357–73.CrossRefGoogle Scholar
Cawood, PA, McCausland, PJA and Dunning, GR (2001) Opening Iapetus: constraints from Laurentian margin in Newfoundland. Geological Society of America Bulletin 113, 443–53.2.0.CO;2>CrossRefGoogle Scholar
Coniglio, M and James, NP (1990) Origin of fine-grained carbonate and siliciclastic sediments in an Early Paleozoic slope sequence, Cow Head Group, Western Newfoundland. Sedimentology 37, 215–30.CrossRefGoogle Scholar
Cooper, RA, Nowlan, GS and Williams, SH (2001) Global stratotype section and point for base of the Ordovician system. Episodes 24, 19–28.Google Scholar
Dahl, TW, Boyle, RA, Canfield, DE, Connelly, JN, Gill, BC, Lenton, TM and Bizzaro, M (2014) Uranium isotopes distinguish two geochemically distinct stages during the later Cambrian SPICE event. Earth and Planetary Science Letters 401, 313–26.CrossRefGoogle ScholarPubMed
Della, Porta G, Kenter, JAM, Bahamonde, JR, Immenhauser, A and Villa, E (2003) Microbial boundstone dominated carbonate slopes (Upper Carboniferous, N. Spain): microfacies, lithofacies distribution and stratal geometry. Facies 49, 175–207.Google Scholar
Dickson, JAD (1966) Carbonate identification and genesis as revealed by staining. Journal of Sedimentary Petrology 36, 491–505.Google Scholar
Fan, R, Deng, SH and Zhang, XL (2011) Significant carbon isotope excursions in the Cambrian and their implications for global correlations. Science China Earth Sciences 54, 1686–95.CrossRefGoogle Scholar
Gill, BC, Lyons, TW, Young, SA, Kump, LR, Knoll, AH and Saltzman, MR (2011) Geochemical evidence for widespread euxinia in the later Cambrian ocean. Nature 469, 80–3.CrossRefGoogle ScholarPubMed
Glumac, B and Mutti, LE (2007) Late Cambrian (Steptoean) sedimentation and responses to seal-level change along the northeastern Laurentian margin: insights from carbon isotope stratigraphy. Geological Society of America Bulletin 119, 623–36.CrossRefGoogle Scholar
Halverson, GP, Hoffman, PF, Schrag, DP, Maloof, AC and Rice, AHN (2005) Toward a Neoproterozoic composite carbon-isotope record. Geological Society of America Bulletin 117, 1181–207.CrossRefGoogle Scholar
Hibbard, JP, Van Staal, CR and Rankin, DW (2007) A comparative analysis of pre-Silurian crustal building blocks of the northern and southern Appalachian Orogen. American Journal of Science 307, 23–45.CrossRefGoogle Scholar
Hurtgen, MT, Pruss, SB and Knoll, AH (2009) Evaluating the relationship between the carbon and sulfur cycles in the later Cambrian ocean: an example from the Port au Port Group, western Newfoundland, Canada. Earth and Planetary Science Letters 281, 288–97.CrossRefGoogle Scholar
James, NP and Stevens, PK (1986) Stratigraphy and correlation of the Cambro–Ordovician Cow Head Group, western Newfoundland. Geological Survey of Canada Bulletin 366, 1–143.Google Scholar
James, NP, Stevens, RK, Barnes, CR and Knight, I (1989) Evolution of a Lower Paleozoic continental-margin carbonate platform, northern Canadian Appalachians. In Controls on Carbonate Platform and Basin Development (eds Crevello, PD, Wilson, JL, Sarg, JF and Read, JF), pp. 123–46. Society of Economic Paleontologists and Mineralogists, Special Publication no. 44.CrossRefGoogle Scholar
Jing, X-C, Deng, S-H, Zhao, Z-J, Lu, Y-Z and Zhang, S-B (2008) Carbon isotope composition and correlation across the Cambrian–Ordovician boundary in Kalpin Region of the Tarim Basin, China. Science in China: Earth Sciences 51, 1317–59.CrossRefGoogle Scholar
Landing, E (2007) Ediacaran–Ordovician of east Laurentia―geologic setting and controls on deposition along the New York Promontory. In S. W. Ford Memorial Volume: Ediacaran–Ordovician of East Laurentia (ed. Landing, E), pp. 5–24. New York State Museum Bulletin no. 510.Google Scholar
Landing, E (2012a) Time-specific black mudstones and global hyperwarming on the Cambrian–Ordovician slope and shelf of the Laurentia palaeocontinent. Palaeogeography, Palaeoclimatology, Palaeoecology 367–368, 256–72.CrossRefGoogle Scholar
Landing, E (2012b) The Great American Carbonate Bank in Eastern Laurentia: its births, deaths, and linkage to paleooceanic oxygenation (Early Cambrian–Late Ordovician). In The Great American Carbonate Bank: The Geology and Economic Resources of the Cambrian–Ordovician Sauk Megasequence of Laurentia (eds Derby, JR, Fritz, RD, Longacre, SA, Morgan, WA and Sternbach, CA), pp. 451–92. American Association of Petroleum Geologists Memoir 98.Google Scholar
Landing, E, Westrop, SR and Adrain, JM (2011) The Lawsonian Stage – the Eoconodontus notchpeakensis FAD and HERB carbon isotope excursion define a globally correlatable terminal Cambrian stage. Bulletin of Geosciences 86, 621–40.CrossRefGoogle Scholar
Landing, E, Westrop, SR and Miller, JF (2010) Globally practical base for the uppermost Cambrian (Stage 10): FAD of the conodont Eoconodontus notchpeakensis and the Housian [sic, read ‘Lawsonian’ as the abstract text] Stage. In The 15th Field Conference of the Cambrian Stage Subdivision Working Group. Abstracts and Excursion Guide, Prague, Czech Republic and South-eastern Germany (eds Fatka, O and Budil, P), p. 18. Prague: Czech Geological Survey.Google Scholar
Lavoie, D, Desrochers, A, Dix, G, Knight, I and Hersi, OS (2012) The Great Carbonate Bank in eastern Canada: an overview. In The Great American Carbonate Bank: The Geology and Economic Resources of Cambrian–Ordovician Sauk Megasequence of Laurentia (eds Derby, JR, Fritz, RD, Longacre, SA, Morgan, WA and Sternbach, CA), pp. 499–524. American Association of Petroleum Geologists, Memoir 98.Google Scholar
Lazarenko, NP, Gogin, IY, Pegel, TV and Abaimova, GP (2011) The Khos-Nelege River section of the Ogon’or Formation: a potential candidate for the GSSP of Stage 10, Cambrian System. Bulletin of Geosciences 86, 555–68.CrossRefGoogle Scholar
Li, X, Jenkyns, HC, Wang, C, Hu, X, Chen, X, Wei, Y, Huang, Y and Cui, J (2006) Upper Cretaceous carbon- and oxygen-isotope stratigraphy of hemipelagic carbonate facies from southern Tibet, China. Journal of the Geological Society, London 163, 375–82.CrossRefGoogle Scholar
Li, D, Zhang, X, Chen, K, Zhang, G, Chen, X, Huang, W, Peng, S and Shen, Y (2017) High-resolution C-isotope chemostratigraphy of the uppermost Cambrian stage (Stage 10) in South China: implications for defining the base of Stage 10 and palaeoenvironmental change. Geological Magazine 154, 1232–43.CrossRefGoogle Scholar
Machel, HG and Burton, EA (1991) Factors governing cathodoluminescence in calcite and dolomite, and their implications for studies of carbonate diagenesis. In Luminescence Microscopy and Spectroscopy: Qualitative and Quantitative Applications. SEPM Short Course Notes, No. 25 (eds Barker, CE, Burruss, RC, Kopp, OC, Machel, HG, Marshall, DJ, Wright, P and Colbum, HY), pp. 37–57. Tulsa, OK: SEPM Society for Sedimentary Geology.Google Scholar
Miller, JF, Evans, KR, Ethington, RL, Freeman, RL, Loch, JD, Popov, LE, Repetski, JE, Ripperdan, RL and Taylor, JF (2015) Proposed Auxiliary Boundary Stratigraphic Section and Point (ASSP) for the base of the Ordovician System at Lawson Cove, Utah, USA. Stratigraphy 12, 219–36.Google Scholar
Miller, JF, Evans, KR, Freeman, RL, Ripperdan, RL and Taylor, JF (2011) Proposed stratotype for the base of the Lawsonian Stage (Cambrian Stage 10) at the first appearance datum of Eoconodontus notchpeakensis (Miller) in the House Range, Utah, USA. Bulletin of Geosciences 86, 595–620.CrossRefGoogle Scholar
Miller, JF, Repetski, JE, Nicoll, RS, Nowlan, G and Ethington, RL (2014) The conodont Iapetognathus and its value for defining the base of the Ordovician system. GFF 136, 185–8.CrossRefGoogle Scholar
Peng, S, Babcock, LE and Cooper, RA (2012) The Cambrian period. In The Geologic Time Scale 2012 (eds Gradstein, FM, Ogg, JG, Schmitz, M and Ogg, G), pp. 437–88. Oxford, UK: Elsevier.CrossRefGoogle Scholar
Ripperdan, RL, Magaritz, M, Nicoll, RS and Shergold, JH (1992) Simultaneous changes in carbon isotopes, sea level, and conodont biozones within the Cambrian–Ordovician boundary interval at Black Mountain, Australia. Geology 20, 1039–41.2.3.CO;2>CrossRefGoogle Scholar
Rush, PF and Chafetz, HS (1990) Fabric retentive, non-luminescent brachiopods as indicators of original δ13C and δ18O compositions: a test. Journal of Sedimentary Petrology 60, 968–81.Google Scholar
Saltzman, MR, Cowan, CA, Runke, AC, Runnegar, B, Stewart, MC and Palmer, AR (2004) The late Cambrian SPICE (δ13C) event and the Sauk II–Sauk III regression: new evidence from Laurentian basins in Utah, Iowa, and Newfoundland. Journal of Sedimentary Research 74, 366–77.CrossRefGoogle Scholar
Saltzman, MR, Ripperdan, RL, Brasier, MD, Ergaliev, GK, Lohmann, KC, Robison, RA, Chang, WT, Peng, S and Runnegar, B (2000) A global carbon isotope excursion during the Late Cambrian: relation to trilobite extinctions, organic matter burial and sea level. Palaeogeography, Palaeoceanography, Palaeoclimatology 162, 211–23.CrossRefGoogle Scholar
Schmid, S (2011) Chemostratigraphy and palaeo-environmental characterisation of the Cambrian stratigraphy in the Amadeus Basin, Australia. Chemical Geology 451, 169–82.CrossRefGoogle Scholar
Sial, AN, Peralta, S, Gaucher, C, Alonso, RN and Pimentel, MA (2008) Upper Cambrian carbonate sequences of the Argentine Precordillera and the Steptoean C-Isotope Positive Excursion (SPICE). Gondwana Research 13, 437–52.CrossRefGoogle Scholar
Sial, AN, Peralta, S, Gaucher, C, Toselli, AJ, Ferreira, VP, Frei, R, Parada, MA, Pimentel, MM and Pereira, NS (2013) High-resolution stable isotope stratigraphy of the upper Cambrian and Ordovician in the Argentine Precordillera: carbon isotope excursions and correlations. Gondwana Research 24, 330–48.CrossRefGoogle Scholar
Terfelt, F, Eriksson, ME and Schmitz, B (2014) The Cambrian–Ordovician transition in dysoxic facies in Baltica – diverse faunas and carbon isotope anomalies. Palaeogeography, Palaeoclimatology, Palaeoecology 394, 59–73.CrossRefGoogle Scholar
Veizer, J (1983) Chemical diagenesis of carbonates. In Theory and Application of Trace Element Technique, Stable Isotopes in Sedimentary Geology. SEPM Short Course Notes, No. 10 (eds Arthur, MA, Anderson, TF, Kaplan, IR, Veizer, J and Land, LS), pp. 3-1-3-100. Tulsa, OK: SEPM Society for Sedimentary Geology.Google Scholar
Veizer, J, Ala, D, Azmy, K, Bruckschen, P, Bruhn, F, Buhl, D, Carden, G, Diener, A, Ebneth, S, Goddris, Y, Jasper, T, Korte, C, Pawellek, F, Podlaha, O and Strauss, H (1999). 87Sr/86Sr, δ18O and δ13C evolution of Phanerozoic seawater. Chemical Geology 161, 59–88.CrossRefGoogle Scholar
Westrop, SR, Adrain, JM and Landing, E (2011) The Cambrian (Sunwaptan, Furongian) agnostoid arthropod Lotagnostus Whitehouse, 1936, in Laurentian and Avalonian North America: systematics and biostratigraphic significance. Bulletin of Geosciences, Czech Geological Survey 86, 569–94.Google Scholar
Wilson, JL, Medlock, PL, Fritz, RD, Canter, KL and Geesaman, RG (1992) A review of Cambro-Ordovician breccias in North America. In Paleokarst, Karst-Related Diagenesis, and Reservoir Development: Examples from Ordovician–Devonian Age Strata of West Texas and the Mid-Continent: 1 (eds Candelaria, MP and Reed, CL), pp. 19–29. Tulsa, OK: SEPM–Permian Basin Section, Publication 92–33.Google Scholar
Woods, MA, Wilby, PR, Leng, MJ, Rushton, AWA and Williams, M (2011) The Furongian (late Cambrian) Steptoean Positive Carbon Isotope Excursion (SPICE) in Avalonia. Journal of the Geological Society, London 168, 851–61.CrossRefGoogle Scholar