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Granina, L Z; Zakharova, Yu P; Parfenova, V V (2011): (Table) Bacterial counts and Fe, Mn and SO4 content in sediments and pore waters of two cores from Lake Baikal [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.793130, Supplement to: Granina, LZ et al. (2011): Biogenic Fe and Mn accumulation in the bottom sediments of Lake Baikal. Geochemistry International, 49(11), 1154-1160, https://doi.org/10.1134/S0016702911110048

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Abstract:
Sediments at the bottom of Lake Baikal are mostly oxidized at their surface, and the oxidized sedimentary deposits are enriched in Fe and Mn hydroxides. The thickness of the oxidized zone of the pelagic sediments averages at 5 cm and locally reaches 10-15, occasionally exceeding 20 cm. Both the thickness of the oxidized layer and the degree of its enrichment in iron and manganese hydroxides are controlled by the depth to which oxygen can penetrate into the sedimentary deposits, which is, in turn, closely related to the sedimentation conditions in the lake (which broadly vary). The sedimentation rate far off the shores of Lake Baikal ranges from <0.02 mm/year to 1.5 mm/year, and the content of organic matter buried in the sediments varies from 0.1 to >4%. The variability of the sedimentation process makes Lake Baikal very convenient to study its diagenetic processes related to redox reactions in sediments, first of all, processes responsible for the redistribution of Fe and Mn compounds.
Although the diagenetic enrichment of Fe and Ni in bottom sediments is known to be of biogenic character, very scarce information is available so far on the microorganisms involved in the redistribution of these elements in sediments in Lake Baikal, which lately led us to explore this issue in detail. Our research was centered on the role played by the microbial community in the diagenetic transformations of Fe and Mn with reference to sedimentation conditions in Lake Baikal.
Project(s):
Coverage:
Median Latitude: 53.016650 * Median Longitude: 107.100000 * South-bound Latitude: 52.300000 * West-bound Longitude: 105.916700 * North-bound Latitude: 53.733300 * East-bound Longitude: 108.283300
Event(s):
Baikal_1 * Latitude: 52.300000 * Longitude: 105.916700 * Recovery: 0.37 m * Location: Lake Baikal, Russia * Comment: R/V Vereshchagin
Baikal_2 * Latitude: 53.733300 * Longitude: 108.283300 * Recovery: 0.62 m * Location: Lake Baikal/Academician Ridge * Comment: R/V Vereshchagin
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1Event labelEvent
2Layer thicknessThicknessmGranina, L Zoxidized layer
3IronFemg/kgGranina, L ZAtomic absorption spectrometry (AAS)min
4IronFemg/kgGranina, L ZAtomic absorption spectrometry (AAS)max
5IronFemg/kgGranina, L ZAtomic absorption spectrometry (AAS)mean
6Sample amount, subsetN subset#Granina, L ZFe in sediment
7ManganeseMnmg/kgGranina, L ZAtomic absorption spectrometry (AAS)min
8ManganeseMnmg/kgGranina, L ZAtomic absorption spectrometry (AAS)max
9ManganeseMnmg/kgGranina, L ZAtomic absorption spectrometry (AAS)mean
10Sample amount, subsetN subset#Granina, L ZMn in sediment
11IronFeµg/lGranina, L ZFe2+; min
12IronFeµg/lGranina, L ZFe2+; max
13IronFeµg/lGranina, L ZFe2+; mean
14Sample amount, subsetN subset#Granina, L ZFe in pore water
15Manganese 2+Mn2+µg/lGranina, L Zmin
16Manganese 2+Mn2+µg/lGranina, L Zmax
17Manganese 2+Mn2+µg/lGranina, L Zmean
18Sample amount, subsetN subset#Granina, L ZMn in pore water
19Sulfate[SO4]2-mg/lGranina, L ZLiquid chromatographymin
20Sulfate[SO4]2-mg/lGranina, L ZLiquid chromatographymax
21Sulfate[SO4]2-mg/lGranina, L ZLiquid chromatographymean
22Sample amount, subsetN subset#Granina, L ZSO4 in pore water
23Depth commentDepth commGranina, L Zdepth at which sulphates disappear from the pore water [cm]
24pHpHGranina, L ZpH metermin
25pHpHGranina, L ZpH metermax
26pHpHGranina, L ZpH metermean
27Sample amount, subsetN subset#Granina, L ZpH
28Oxidation reduction (RedOx) potentialEhmVGranina, L Zat sediment surface
29Oxidation reduction (RedOx) potentialEhmVGranina, L Zwithin sediment, max
30Oxidation reduction (RedOx) potentialEhmVGranina, L Zwithin sediment, min
31Sample amount, subsetN subset#Granina, L ZEh in sediment
32Bacteria, iron oxidizing, abundance in colony forming unitsBact Fe-oxCFU/gGranina, L Zmin
33Bacteria, iron oxidizing, abundance in colony forming unitsBact Fe-oxCFU/gGranina, L Zmax
34Sample amount, subsetN subset#Granina, L ZFe-ox bacteria
35Bacteria, manganese oxidizing, abundance in colony forming unitsBact Mn-oxCFU/gGranina, L Zmin
36Bacteria, manganese oxidizing, abundance in colony forming unitsBact Mn-oxCFU/gGranina, L Zmax
37Sample amount, subsetN subset#Granina, L ZMn-ox bacteria
Size:
72 data points

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