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Trotter, Julie; Montagna, Paolo; McCulloch, Malcolm T; Silenzi, Sergio; Reynaud, Stéphanie; Mortimer, Graham; Martin, Sophie; Ferrier-Pagès, Christine; Gattuso, Jean-Pierre; Rodolfo-Metalpa, Riccardo (2011): Seawater carbonate chemistry and zooxanthellate coral Cladocora caespitosa boron isotopic and elemental systematics during experiments, 2011 [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.767603, Supplement to: Trotter, J et al. (2011): Quantifying the pH 'vital effect' in the temperate zooxanthellate coral Cladocora caespitosa: Validation of the boron seawater pH proxy. Earth and Planetary Science Letters, 303, 163-173, https://doi.org/10.1016/j.epsl.2011.01.030

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Abstract:
Boron isotopic and elemental systematics are used to define the vital effects for the temperate shallow water Mediterranean coral Cladocora caespitosa. The corals are from a range of seawater pH conditions (pHT ~ 7.6 to ~ 8.1) and environmental settings: (1) naturally living colonies harvested from normal pH waters offshore Levanto, (2) colonies transplanted nearby a subsea volcanic vent system, and (3) corals cultured in aquaria exposed to high (700 µatm) and near present day (400 µatm) pCO2 levels. B/Ca compositions measured using laser ablation inductively coupled mass spectrometry (LA-ICPMS) show that boron uptake by C. caespitosa cultured at different pCO2 levels is independent of ambient seawater pH being mainly controlled by temperature-dependent calcification. In contrast, the boron isotope compositions (delta11Bcarb) of the full suite of corals determined by positive thermal ionisation mass spectrometry (PTIMS) shows a clear trend of decreasing delta11Bcarb (from 26.7 to 22.2 %o) with decreasing seawater pH, reflecting the strong pH dependence of the boron isotope system. The delta11Bcarb compositions together with measurements of ambient seawater parameters enable calibration of the boron pH proxy for C. caespitosa, by using a new approach that defines the relationship between ambient seawater pH (pHsw) and the internally controlled pH at the site of calcification (pHbiol). C. caespitosa exhibits a linear relationship between pHsw and the shift in pH due to physiological processes (deltapH = pHbiol - pHsw) giving the regression deltapHClad = 4.80 - 0.52* pHsw for this species. We further apply this method ("deltapH-pHsw") to calibrate tropical species of Porites, Acropora, and Stylophora reported in the literature. The temperate and tropical species calibrations are all linearly correlated (r2 > 0.9) and the biological fractionation component (deltapH) between species varies within ~ 0.2 pH units. Our "deltapH-pHsw" approach provides a robust and accurate tool to reconstruct palaeoseawater pHsw for both temperate and tropical corals, further validating the boron fractionation factor (alphaB3-B4 = 1.0272) determined experimentally by Klochko et al. (2006) and the boron isotope pH proxy, both of which have been the foci of considerable debate.
Funding:
Seventh Framework Programme (FP7), grant/award no. 211384: European Project on Ocean Acidification
Coverage:
Date/Time Start: 2006-08-23T00:00:00 * Date/Time End: 2007-07-02T00:00:00
Minimum DISTANCE: 0.0001 cm * Maximum DISTANCE: 0.0532 cm
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SiteSiteTrotter, Julie
2Experimental treatmentExp treatTrotter, Julie
3DATE/TIMEDate/TimeGeocode
4SpeciesSpeciesTrotter, Julie
5SalinitySalTrotter, JulieMeasured
6Temperature, waterTemp°CTrotter, JulieMeasured
7Temperature, standard deviationT std dev±Trotter, Julie
8Alkalinity, totalATµmol/kgTrotter, JulieTitration potentiometric
9Alkalinity, total, standard deviationAT std dev±Trotter, Julie
10pHpHTrotter, JuliepH meter (Metrohm, 826 pH mobile)Total scale
11pH, standard deviationpH std dev±Trotter, Julie
12Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmTrotter, JulieCalculated, see reference(s)
13Carbon dioxide, partial pressure, standard deviationpCO2 std dev±Trotter, Julie
14Carbon dioxideCO2µmol/kgTrotter, JulieCalculated, see reference(s)
15Carbon dioxide, standard deviationCO2 std dev±Trotter, Julie
16Carbonate ion[CO3]2-µmol/kgTrotter, JulieCalculated, see reference(s)
17Carbonate ion, standard deviation[CO3]2- std dev±Trotter, Julie
18Bicarbonate ion[HCO3]-µmol/kgTrotter, JulieCalculated, see reference(s)
19Bicarbonate ion, standard deviation[HCO3]- std dev±Trotter, Julie
20Carbon, inorganic, dissolvedDICµmol/kgTrotter, JulieCalculated, see reference(s)
21Carbon, inorganic, dissolved, standard deviationDIC std dev±Trotter, Julie
22Aragonite saturation stateOmega ArgTrotter, JulieCalculated, see reference(s)
23Aragonite saturation state, standard deviationOmega Arg std dev±Trotter, Julie
24δ11Bδ11B‰ SRMTrotter, Juliesee reference(s)
25Boron hydroxide/Bicarbonate ratio[B(OH)4]-/[CO3]2-Trotter, Juliesee reference(s)
26Boron hydroxide/Bicarbonate ratio[B(OH)4]-/[HCO3]-Trotter, Juliesee reference(s)
27DISTANCEDistancecmGeocode
28Boron/Calcium ratioB/CaTrotter, Juliemmol/mol
Size:
29568 data points

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