(Table 1) Average sea surface temperature, average sea surface salinity, C37 concentration, palmitic acid concentration, Uk'37, C37/C38 ratio, dD of water, dD of C37 and dD of palmitic acid of water samples from a transect across the Amazon Plume
| Cobertura |
MEDIAN LATITUDE: 3.092817 * MEDIAN LONGITUDE: -49.658500 * SOUTH-BOUND LATITUDE: 1.567600 * WEST-BOUND LONGITUDE: -53.601000 * NORTH-BOUND LATITUDE: 6.658000 * EAST-BOUND LONGITUDE: -48.256800 * DATE/TIME START: 2012-02-25T00:00:00 * DATE/TIME END: 2012-03-09T00:00:00 * MINIMUM DEPTH, water: 6 m * MAXIMUM DEPTH, water: 6 m |
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| Data(s) |
15/12/2015
|
| Resumo |
The stable hydrogen isotope composition of lipid biomarkers, such as alkenones, is a promising new tool for the improvement of palaeosalinity reconstructions. Laboratory studies confirmed the correlation between lipid biomarker dD composition (dDLipid), water dD composition (dDH2O) and salinity; yet there is limited insight into the applicability of this proxy in oceanic environments. To fill this gap, we test the use of the dD composition of alkenones (dDC37) and palmitic acid (dDPA) as salinity proxies using samples of surface suspended material along the distinct salinity gradient induced by the Amazon Plume. Our results indicate a positive correlation between salinity and dDH2O, while the relationship between dDH2O and dDLipid is more complex: dDPAM correlates strongly with dDH2O (r2 = 0.81) and shows a salinity-dependent isotopic fractionation factor. dDC37 only correlates with dDH2O in a small number (n = 8) of samples with alkenone concentrations > 10 ng L**-1, while there is no correlation if all samples are taken into account. These findings are mirrored by alkenone-based temperature reconstructions, which are inaccurate for samples with low alkenone concentrations. Deviations in dDC37 and temperature are likely to be caused by limited haptophyte algae growth due to low salinity and light limitation imposed by the Amazon Plume. Our study confirms the applicability of dDLipid as a salinity proxy in oceanic environments. But it raises a note of caution concerning regions where low alkenone production can be expected due to low salinity and light limitation, for instance, under strong riverine discharge. |
| Formato |
text/tab-separated-values, 520 data points |
| Identificador |
https://doi.pangaea.de/10.1594/PANGAEA.855892 doi:10.1594/PANGAEA.855892 |
| Idioma(s) |
en |
| Publicador |
PANGAEA |
| Relação |
Mulitza, Stefan; Chiessi, Cristiano Mazur; Cruz, Anna Paula Soares; Frederichs, Thomas; Gomes, Jairo Geraldo; Gurgel, Marcio Henrique da C; Haberkern, Julia; Huang, Enqing; Jovane, Luigi; Kuhnert, Henning; Pittauerová, Daniela; Reiners, Sally-Jane; Roud, Sophie; Schefuß, Enno; Schewe, Felix; Schwenk, Tilmann; Sicoli Seoane, Jose Carlos; Sousa, Silvia Helena; Wangner, David; Wiers, Steffen (2013): Response of Amazon sedimentation to deforestation, land use and climate variability - Cruise No. MSM20/3 - February 19 - March 11, 2012 - Recife (Brazil) - Bridgetown (Barbados). MARIA S. MERIAN-Berichte, DFG-Senatskommission für Ozeanographie, MSM20/3, 86 pp, doi:10.2312/cr_msm20_3 |
| Direitos |
CC-BY: Creative Commons Attribution 3.0 Unported Access constraints: unrestricted |
| Fonte |
Supplement to: Häggi, Christoph; Chiessi, Cristiano Mazur; Schefuß, Enno (2015): Testing the D / H ratio of alkenones and palmitic acid as salinity proxies in the Amazon Plume. Biogeosciences, 12, 7239-7249, doi:10.5194/bg-12-7239-2015 |
| Palavras-Chave | #Alkenone, C37; Alkenone, unsaturation index UK'37; Alkenone C37/C38 ratio; Center for Marine Environmental Sciences; Comment; delta Deuterium, Alkenone, C37; delta Deuterium, palmitic acid; delta Deuterium, standard deviation; delta Deuterium, water; DEPTH, water; Error; Event label; Hexadecanoic acid; Latitude of event; Longitude of event; Maria S. Merian; MARUM; Mass spectrometer Finnigan MAT 253; Measured; MSM20/3; MSM20/3_PP10; MSM20/3_PP11; MSM20/3_PP12; MSM20/3_PP13; MSM20/3_PP14; MSM20/3_PP15; MSM20/3_PP16; MSM20/3_PP17; MSM20/3_PP19; MSM20/3_PP20; MSM20/3_PP21; MSM20/3_PP22; MSM20/3_PP23; MSM20/3_PP24; MSM20/3_PP25; MSM20/3_PP26; MSM20/3_PP27; MSM20/3_PP33; MSM20/3_PP34; MSM20/3_PP35; MSM20/3_PP36; MSM20/3_PP37; MSM20/3_PP38; MSM20/3_PP40; MSM20/3_PP41; MSM20/3_PP42; MSM20/3_PP43; MSM20/3_PP44; MSM20/3_PP45; MSM20/3_PP46; MSM20/3_PP47; MSM20/3_PP48; MSM20/3_PP49; MSM20/3_PP51; MSM20/3_PP52; MSM20/3_PP53; MSM20/3_PP54; MSM20/3_PP55; MSM20/3_PP57; MSM20/3_PP60; MSM20/3_PP61; MSM20/3_PP62; MSM20/3_PP65; MSM20/3_PP66; MSM20/3_PP67; MSM20/3_PP68; MSM20/3_PP69; MSM20/3_PP70; PP10; PP11; PP12; PP13; PP14; PP15; PP16; PP17; PP19; PP20; PP21; PP22; PP23; PP24; PP25; PP26; PP27; PP33; PP34; PP35; PP36; PP37; PP38; PP40; PP41; PP42; PP43; PP44; PP45; PP46; PP47; PP48; PP49; PP51; PP52; PP53; PP54; PP55; PP57; PP60; PP61; PP62; PP65; PP66; PP67; PP68; PP69; PP70; PUMP; Sea surface salinity; Sea surface temperature; Sea surface temperature, standard deviation; Standard deviation; Water pump |
| Tipo |
Dataset |