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  • 1
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    PANGAEA
    In:  Supplement to: Kellerman, Anne M; Kothawala, Dolly N; Dittmar, Thorsten; Tranvik, Lars J (2015): Persistence of dissolved organic matter in lakes related to its molecular characteristics. Nature Geoscience, 8, 454-457, https://doi.org/10.1038/ngeo2440
    Publication Date: 2023-01-13
    Description: Whether intrinsic molecular properties or extrinsic factors such as environmental conditions control the decomposition of natural organic matter across soil, marine and freshwater systems has been subject to debate. Comprehensive evaluations of the controls that molecular structure exerts on organic matter's persistence in the environment have been precluded by organic matter's extreme complexity. Here we examine dissolved organic matter from 109 Swedish lakes using ultrahigh-resolution mass spectrometry and optical spectroscopy to investigate the constraints on its persistence in the environment. We find that degradation processes preferentially remove oxidized, aromatic compounds, whereas reduced, aliphatic and N-containing compounds are either resistant to degradation or tightly cycled and thus persist in aquatic systems. The patterns we observe for individual molecules are consistent with our measurements of emergent bulk characteristics of organic matter at wide geographic and temporal scales, as reflected by optical properties. We conclude that intrinsic molecular properties are an important control of overall organic matter reactivity.
    Type: Dataset
    Format: application/zip, 2 datasets
    Location Call Number Limitation Availability
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  • 2
    Publication Date: 2023-01-13
    Keywords: Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR-MS); Hydrogen/Carbon ratio; Mass-to-charge ratio; Molecular formula; Oxygen/Carbon ratio; Peak intensity
    Type: Dataset
    Format: text/tab-separated-values, 330846 data points
    Location Call Number Limitation Availability
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  • 3
    Publication Date: 2023-01-13
    Keywords: Absorption; Aromaticity index; Biological index; Calculated; Carbon, nominal oxidation state; Carbon, organic, dissolved; Date/Time of event; DEPTH, water; Event label; Fluorescence index; Fluorescence intensity; Humification index; Hydrogen/Carbon ratio; Identification; Intensity; LAKE; Latitude 2; Latitude of event; Longitude 2; Longitude of event; Mass-to-charge ratio; Nitrogen, number of atoms; Nitrogen, organic, dissolved; Nitrogen/Carbon ratio; Oxygen/Carbon ratio; Parallel factor analysis (PARAFAC); Sampling lake; Slope; Specific ultraviolet absorbance per mass Carbon; Sulfur, number of atoms; Sweden; Sweden_Lake1; Sweden_Lake10; Sweden_Lake100; Sweden_Lake101; Sweden_Lake102; Sweden_Lake103; Sweden_Lake104; Sweden_Lake106; Sweden_Lake107; Sweden_Lake108; Sweden_Lake109; Sweden_Lake11; Sweden_Lake110; Sweden_Lake111; Sweden_Lake112; Sweden_Lake114; Sweden_Lake115; Sweden_Lake118; Sweden_Lake12; Sweden_Lake122; Sweden_Lake123; Sweden_Lake124; Sweden_Lake125; Sweden_Lake126; Sweden_Lake127; Sweden_Lake128; Sweden_Lake129; Sweden_Lake13; Sweden_Lake130; Sweden_Lake131; Sweden_Lake132; Sweden_Lake133; Sweden_Lake134; Sweden_Lake135; Sweden_Lake136; Sweden_Lake137; Sweden_Lake138; Sweden_Lake139; Sweden_Lake14; Sweden_Lake140; Sweden_Lake141; Sweden_Lake142; Sweden_Lake143; Sweden_Lake144; Sweden_Lake145; Sweden_Lake146; Sweden_Lake147; Sweden_Lake148; Sweden_Lake149; Sweden_Lake15; Sweden_Lake150; Sweden_Lake16; Sweden_Lake17; Sweden_Lake18; Sweden_Lake19; Sweden_Lake2; Sweden_Lake22; Sweden_Lake23; Sweden_Lake24; Sweden_Lake25; Sweden_Lake26; Sweden_Lake27; Sweden_Lake28; Sweden_Lake29; Sweden_Lake3; Sweden_Lake30; Sweden_Lake33; Sweden_Lake36; Sweden_Lake38; Sweden_Lake39; Sweden_Lake4; Sweden_Lake40; Sweden_Lake41; Sweden_Lake42; Sweden_Lake43; Sweden_Lake44; Sweden_Lake45; Sweden_Lake46; Sweden_Lake47; Sweden_Lake49; Sweden_Lake5; Sweden_Lake50; Sweden_Lake55; Sweden_Lake6; Sweden_Lake70; Sweden_Lake71; Sweden_Lake72; Sweden_Lake73; Sweden_Lake74; Sweden_Lake75; Sweden_Lake76; Sweden_Lake77; Sweden_Lake78; Sweden_Lake79; Sweden_Lake80; Sweden_Lake81; Sweden_Lake82; Sweden_Lake83; Sweden_Lake84; Sweden_Lake85; Sweden_Lake86; Sweden_Lake87; Sweden_Lake88; Sweden_Lake89; Sweden_Lake90; Sweden_Lake91; Sweden_Lake92; Sweden_Lake93; Sweden_Lake94; Sweden_Lake95; Sweden_Lake97; Sweden_Lake98; Sweden_Lake99; Weighted average
    Type: Dataset
    Format: text/tab-separated-values, 3724 data points
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  • 4
    Publication Date: 2023-10-28
    Description: The outflow of Leverett Glacier, a large land-terminating glacier of the Greenland Ice Sheet was sampled over the 2015 ablation season. Dissolved organic carbon (DOC) concentrations, dissolved organic matter (DOM) fluorescence, and hydrogeochemical data (e.g. discharge, specific conductivity, pH, and turbidity) were analyzed to assess changing DOM sources over the melt season. DOC concentrations and red-shifted fluorescence suggest terrestrial inputs from overridden soils dominated DOM early season inputs before progressive dilution with increasing discharge. During the outburst period, supraglacial drainage events disrupted the subglacial drainage system and introduced dominant protein-like fluorescence signatures not observed in basal flow. These results suggest that subglacial hydrology and changing water sources influence exported DOC concentration and DOM composition, differentiated through fluorescence characteristics. The outburst and post-outburst periods were characterized by protein-like fluorescence from supraglacial and potentially subglacial microbial sources.
    Keywords: Campbell Scientific 247-L Conductivity and Temperature Probe; Carbon, organic, dissolved; Carbon, organic, dissolved load; Conductivity; DATE/TIME; Day of the year; Dissolved Organic Matter; DOM; Event label; Flow rate; Fluorescence; Fluorescence, dissolved organic matter, at 317 nm wavelength; Fluorescence, dissolved organic matter, at 368 nm wavelength; Fluorescence, dissolved organic matter, at 416 nm wavelength; Fluorescence, dissolved organic matter, at 425 nm wavelength; Fluorescence, dissolved organic matter, at 483 nm wavelength; Fluorescence spectrometer, AquaLog, HORIBA JobinYvon; glaciers; Greenland; Honeywell Durafet pH sensors; Lachat QuickChem 8500 flow injection autoanalyser; L Atalante; Leverett_glacier_basal_ice; Leverett_glacier_snow; Leverett_glacier_time_series; Nitrogen in nitrate; PARAFAC; Period; pH; Phosphorus in orthophosphate; Pressure transducer, HOBO; Roorkee Industries Suspended Sediment Sampler USDH-48; Shimadzu TOC-L total organic carbon analyzer; SNOW; Snow/ice sample; Suspended particulate matter; Thermo Scientific Dionex IonPac AS11-HC-4μm Anion-Exchange Column fitted to a Thermo Scientific Dionex ICS-5000 Ion Chromatography; ZAIROV
    Type: Dataset
    Format: text/tab-separated-values, 785 data points
    Location Call Number Limitation Availability
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  • 5
    Publication Date: 2022-10-26
    Description: Author Posting. © American Geophysical Union, 2021. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Journal of Geophysical Research: Biogeosciences 126(7), (2021): e2020JG005977, https://doi.org/10.1029/2020JG005977.
    Description: Increasing Arctic temperatures are thawing permafrost soils and liberating ancient organic matter, but the fate of this material remains unclear. Thawing of permafrost releases dissolved organic matter (DOM) into fluvial networks. Unfortunately, tracking this material in Arctic rivers such as the Kolyma River in Siberia has proven challenging due to its high biodegradability. Here, we evaluate late summer abruptly thawed yedoma permafrost dissolved organic carbon (DOC) inputs from Duvannyi Yar. We implemented ultrahigh-resolution mass spectrometry alongside ramped pyrolysis oxidation (RPO) and isotopic analyses. These approaches offer insight into DOM chemical composition and DOC radiocarbon values of thermochemical components for a permafrost thaw stream, the Kolyma River, and their biodegraded counterparts (n = 4). The highly aliphatic molecular formula found in undegraded permafrost DOM contrasted with the comparatively aliphatic-poor formula of Kolyma River DOM, represented by an 8.9% and 2.6% relative abundance, respectively, suggesting minimal inputs of undegraded permafrost DOM in the river. RPO radiocarbon fractions of Kolyma River DOC exhibited no “hidden” aged component indicative of permafrost influence. Thermostability analyses suggested that there was limited biodegraded permafrost DOC in the Kolyma River, in part determined by the formation of high-activation energy (thermally stable) biodegradation components in permafrost DOM that were lacking in the Kolyma River. A mixing model based on thermostability and radiocarbon allowed us to estimate a maximum input of between 0.8% and 7.7% of this Pleistocene-aged permafrost to the Kolyma River DOC. Ultimately, our findings highlight that export of modern terrestrial DOC currently overwhelms any permafrost DOC inputs in the Kolyma River.
    Description: This work was funded by NSF grants ANT-1203885 and PLR-1500169 to R.G.M.S. The work was also supported by the National Science Foundation Division of Chemistry through DMR-1644779 and the State of Florida.
    Description: 2022-01-09
    Keywords: Permafrost ; Dissolved organic carbon ; Dissolved organic matter ; FT-ICR MS ; Ramped pyrolysis oxidation ; Arctic
    Repository Name: Woods Hole Open Access Server
    Type: Article
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  • 6
    Publication Date: 2022-05-27
    Description: © The Author(s), 2021. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Hawkings, J. R., Linhoff, B. S., Wadham, J. L., Stibal, M., Lamborg, C. H., Carling, G. T., Lamarche-Gagnon, G., Kohler, T. J., Ward, R., Hendry, K. R., Falteisek, L., Kellerman, A. M., Cameron, K. A., Hatton, J. E., Tingey, S., Holt, A. D., Vinsova, P., Hofer, S., Bulinova, M., Větrovský, T., Meire, L., Spencer, R. G. M. Large subglacial source of mercury from the southwestern margin of the Greenland Ice Sheet. Nature Geoscience, 14, (2021): 496-502, https://doi.org/10.1038/s41561-021-00753-w.
    Description: The Greenland Ice Sheet is currently not accounted for in Arctic mercury budgets, despite large and increasing annual runoff to the ocean and the socio-economic concerns of high mercury levels in Arctic organisms. Here we present concentrations of mercury in meltwaters from three glacial catchments on the southwestern margin of the Greenland Ice Sheet and evaluate the export of mercury to downstream fjords based on samples collected during summer ablation seasons. We show that concentrations of dissolved mercury are among the highest recorded in natural waters and mercury yields from these glacial catchments (521–3,300 mmol km−2 year−1) are two orders of magnitude higher than from Arctic rivers (4–20 mmol km−2 year−1). Fluxes of dissolved mercury from the southwestern region of Greenland are estimated to be globally significant (15.4–212 kmol year−1), accounting for about 10% of the estimated global riverine flux, and include export of bioaccumulating methylmercury (0.31–1.97 kmol year−1). High dissolved mercury concentrations (~20 pM inorganic mercury and ~2 pM methylmercury) were found to persist across salinity gradients of fjords. Mean particulate mercury concentrations were among the highest recorded in the literature (~51,000 pM), and dissolved mercury concentrations in runoff exceed reported surface snow and ice values. These results suggest a geological source of mercury at the ice sheet bed. The high concentrations of mercury and its large export to the downstream fjords have important implications for Arctic ecosystems, highlighting an urgent need to better understand mercury dynamics in ice sheet runoff under global warming.
    Description: This research is part of a European Commission Horizon 2020 Marie Skłodowska-Curie Actions fellowship ICICLES (grant agreement #793962) to J.R.H. Greenland terrestrial research campaigns were funded by a UK NERC standard grant (NE/I008845/1) and a Leverhulme Trust Research Grant (RPG-2016-439) to J.L.W., with additional support provided by a Royal Society Wolfson Merit Award to J.L.W. Additional funding came from Czech Science Foundation grants (GACR; 15-17346Y and 18-12630S) to M.S. Fjord fieldwork was supported by European Research Council grant ICY-LAB (grant agreement 678371) and Royal Society Enhancement Award (grant RGF\EA\181036) to K.R.H. L.M. was funded by research programme VENI (0.16.Veni.192.150, NWO). T.J.K. was supported by Charles University Research Centre program no. 204069. The authors thank the captain and crew of the RV Kisaq and staff at the Greenland Institute of Natural Resources for assistance during fjord fieldwork, and all those involved with fieldwork at Leverett Camp during the 2012 and 2015 field campaigns. M. Cooper is thanked for providing the geological overview file for Extended Data Fig. 1a, and K. Mankoff for help in generating the modelled GrIS discharge datasets. The authors also thank G. White in the geochemistry group at the National High Magnetic Field Geochemistry Laboratory, which is supported by NSF DMR-1644779 and the State of Florida, for analytical support.
    Repository Name: Woods Hole Open Access Server
    Type: Article
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