Aragonite-calcite seas—Quantifying the gray area

Geology - Tập 43 Số 2 - Trang 99-102 - 2015
Uwe Balthasar1, Maggie Cusack1
1#N# School of Geographical and Earth Sciences, University of Glasgow, Glasgow G12 8QQ, UK

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Angiolini, 2009, How cold were the Early Permian glacial tropics? Testing sea-surface temperature using the oxygen isotope composition of rigorously screened brachiopod shells, Journal of the Geological Society, 166, 933, 10.1144/0016-76492008-096R

Arvidson, 2013, Geologic history of seawater: A MAGic approach to carbon chemistry and ocean ventilation, Chemical Geology, 362, 287, 10.1016/j.chemgeo.2013.10.012

Balthasar, 2011, Relic aragonite from Ordovician–Silurian brachiopods: Implications for the evolution of calcification, Geology, 39, 967, 10.1130/G32269.1

Berner, 2004, A model for calcium, magnesium, and sulfate in seawater over Phanerozoic time, American Journal of Science, 304, 438, 10.2475/ajs.304.5.438

Bots, 2011, The role of SO4 in the switch from calcite to aragonite seas, Geology, 39, 331, 10.1130/G31619.1

Brand, 2012, The end-Permian mass extinction: A rapid volcanic CO2 and CH4-climatic catastrophe, Chemical Geology, 322–323, 121, 10.1016/j.chemgeo.2012.06.015

Came, 2007, Coupling of surface temperatures and atmospheric CO2 concentrations during the Palaeozoic era, Nature, 449, 198, 10.1038/nature06085

Crowley, 2001, CO2 and climate change, Science, 292, 870, 10.1126/science.1061664

De Choudens-Sánchez, 2009, Calcite and aragonite precipitation under controlled instantaneous supersaturation: Elucidating the role of CaCO3 saturation state and Mg/Ca ratio on calcium carbonate polymorphism, Journal of Sedimentary Research, 79, 363, 10.2110/jsr.2009.043

Demicco, 2005, Model of seawater composition for the Phanerozoic, Geology, 33, 877, 10.1130/G21945.1

Dickson, 1981, An exact definition of total alkalinity and a procedure for the estimation of alkalinity and total inorganic carbon from titration data, Deep-Sea Research, 28, 609, 10.1016/0198-0149(81)90121-7

Farkaš, 2007, Calcium isotope record of Phanerozoic oceans: Implications for chemical evolution of seawater and its causative mechanisms, Geochimica et Cosmochimica Acta, 71, 5117, 10.1016/j.gca.2007.09.004

Hardie, 1996, Secular variation in seawater chemistry: An explanation for the coupled secular variation in the mineralogies of marine limestones and potash evaporites over the past 600 m.y., Geology, 24, 279, 10.1130/0091-7613(1996)024<0279:SVISCA>2.3.CO;2

Harper, 1997, Evolutionary response by bivalves to changing Phanerozoic sea-water chemistry, Geological Magazine, 134, 403, 10.1017/S0016756897007061

Horita, 2002, Chemical evolution of seawater during the Phanerozoic: Implications from the record of marine evaporates, Geochimica et Cosmochimica Acta, 66, 3733, 10.1016/S0016-7037(01)00884-5

Huber, 2002, Deep-sea paleotemperature record of extreme warmth during the Cretaceous, Geology, 30, 123, 10.1130/0091-7613(2002)030<0123:DSPROE>2.0.CO;2

Jablonski, 2006, Out of the tropics: Evolutionary dynamics of the latitudinal diversity gradient, Science, 314, 102, 10.1126/science.1130880

Joachimski, 2009, Devonian climate and reef evolution: Insights from oxygen isotopes in apatite, Earth and Planetary Science Letters, 284, 599, 10.1016/j.epsl.2009.05.028

Kershaw, 2013, Palaeozoic stromatoporoid futures: A discussion of their taxonomy, mineralogy and applications in palaeoecology and palaeoenvironmental analysis, Journal of Palaeogeography, 2, 163

Kiessling, 2008, Phanerozoic trends in skeletal mineralogy driven by mass extinctions, Nature Geoscience, 1, 527, 10.1038/ngeo251

Kiessling, 2010, Reefs as cradles of evolution and sources of biodiversity in the Phanerozoic, Science, 327, 196, 10.1126/science.1182241

Lee, 2010, Influences of alkalinity and pCO2 on CaCO3 nucleation from estimated Cretaceous composition seawater representative of “calcite seas”, Geology, 38, 115, 10.1130/G30537.1

Lowenstein, 2001, Oscillations in Phanerozoic seawater chemistry: Evidence from fluid inclusions, Science, 294, 1086, 10.1126/science.1064280

Mackenzie, 2013, The marine carbon system and ocean acidification during Phanerozoic time, Geochemical Perspectives, 2, 1, 10.7185/geochempersp.2.1

Morse, 1997, Influences of temperature and Mg:Ca ratio on CaCO3 precipitates from seawater, Geology, 25, 85, 10.1130/0091-7613(1997)025<0085:IOTAMC>2.3.CO;2

Morse, 2007, Calcium carbonate formation and dissolution, Chemical Reviews, 107, 342, 10.1021/cr050358j

Niedermayr, 2013, Impacts of aqueous carbonate accumulation rate, magnesium and polyaspartic acid on calcium carbonate formation (6–40 °C), Chemical Geology, 340, 105, 10.1016/j.chemgeo.2012.12.014

Porter, 2010, Calcite and aragonite seas and the de novo acquisition of carbonate skeletons, Geobiology, 8, 256, 10.1111/j.1472-4669.2010.00246.x

Riding, 2005, Geobiology of microbial carbonates: Metazoan and seawater saturation state influences on secular trends during the Phanerozoic, Palaeogeography, Palaeoclimatology, Palaeoecology, 219, 101, 10.1016/j.palaeo.2004.11.018

Sandberg, 1983, An oscillating trend in Phanerozoic non-skeletal carbonate mineralogy, Nature, 305, 19, 10.1038/305019a0

Saulnier, 2012, Mg isotope fractionation during calcite precipitation: An experimental study, Geochimica et Cosmochimica Acta, 91, 75, 10.1016/j.gca.2012.05.024

Seki, 2012, Paleoceanographic changes in the Eastern Equatorial Pacific over the last 10 Myr, Paleoceanography, 27, PA3224, 10.1029/2011PA002158

Stanley, 1998, Secular oscillations in the carbonate mineralogy of reef-building and sediment-producing organisms driven by tectonically forced shifts in seawater chemistry, Palaeogeography, Palaeoclimatology, Palaeoecology, 144, 3, 10.1016/S0031-0182(98)00109-6

Trotter, 2008, Did cooling oceans trigger Ordovician biodiversification? Evidence from conodont thermometry, Science, 321, 550, 10.1126/science.1155814

Zhuravlev, 2008, Eve of biomineralization: Controls on skeletal mineralogy, Geology, 36, 923, 10.1130/G25094A.1

Zhuravlev, 2009, Controls on carbonate skeletal mineralogy: Global CO2 evolution and mass extinctions, Geology, 37, 1123, 10.1130/G30204A.1