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  Glacier algae accelerate melt rates on the south-western Greenland Ice Sheet

Cook, J. M., Tedstone, A. J., Williamson, C., McCutcheon, J., Hodson, A. J., Dayal, A., Skiles, M., Hofer, S., Bryant, R., McAree, O., McGonigle, A., Ryan, J., Anesio, A. M., Irvine-Fynn, T. D. L., Hubbard, A., Hanna, E., Flanner, M., Mayanna, S., Benning, L. G., van As, D., Yallop, M., McQuaid, J. B., Gribbin, T., Tranter, M. (2020): Glacier algae accelerate melt rates on the south-western Greenland Ice Sheet. - The Cryosphere, 14, 309-330.
https://doi.org/10.5194/tc-14-309-2020

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 Creators:
Cook, Joseph M.1, Author
Tedstone, Andrew J.1, Author
Williamson, Christopher1, Author
McCutcheon, Jenine1, Author
Hodson, Andrew J.1, Author
Dayal, Archana1, Author
Skiles, McKenzie1, Author
Hofer, Stefan1, Author
Bryant, Robert1, Author
McAree, Owen1, Author
McGonigle, Andrew1, Author
Ryan, Jonathan1, Author
Anesio, Alexandre M.1, Author
Irvine-Fynn, Tristram D. L.1, Author
Hubbard, Alun1, Author
Hanna, Edward1, Author
Flanner, Mark1, Author
Mayanna, S.2, Author              
Benning, Liane G.2, Author              
van As, Dirk1, Author
Yallop, Marian1, AuthorMcQuaid, James B.1, AuthorGribbin, Thomas1, AuthorTranter, Martyn1, Author more..
Affiliations:
1External Organizations, ou_persistent22              
23.5 Interface Geochemistry, 3.0 Geochemistry, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum, ou_754888              

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 Abstract: Melting of the Greenland Ice Sheet (GrIS) is the largest single contributor to eustatic sea level and is amplified by the growth of pigmented algae on the ice surface, which increases solar radiation absorption. This biological albedo-reducing effect and its impact upon sea level rise has not previously been quantified. Here, we combine field spectroscopy with a radiative-transfer model, supervised classification of unmanned aerial vehicle (UAV) and satellite remote-sensing data, and runoff modelling to calculate biologically driven ice surface ablation. We demonstrate that algal growth led to an additional 4.4–6.0 Gt of runoff from bare ice in the south-western sector of the GrIS in summer 2017, representing 10 %–13 % of the total. In localized patches with high biomass accumulation, algae accelerated melting by up to 26.15±3.77 % (standard error, SE). The year 2017 was a high-albedo year, so we also extended our analysis to the particularly low-albedo 2016 melt season. The runoff from the south-western bare-ice zone attributed to algae was much higher in 2016 at 8.8–12.2 Gt, although the proportion of the total runoff contributed by algae was similar at 9 %–13 %. Across a 10 000 km2 area around our field site, algae covered similar proportions of the exposed bare ice zone in both years (57.99 % in 2016 and 58.89 % in 2017), but more of the algal ice was classed as “high biomass” in 2016 (8.35 %) than 2017 (2.54 %). This interannual comparison demonstrates a positive feedback where more widespread, higher-biomass algal blooms are expected to form in high-melt years where the winter snowpack retreats further and earlier, providing a larger area for bloom development and also enhancing the provision of nutrients and liquid water liberated from melting ice. Our analysis confirms the importance of this biological albedo feedback and that its omission from predictive models leads to the systematic underestimation of Greenland's future sea level contribution, especially because both the bare-ice zones available for algal colonization and the length of the biological growth season are set to expand in the future.

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 Dates: 2020-01-292020
 Publication Status: Finally published
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 Identifiers: DOI: 10.5194/tc-14-309-2020
GFZPOF: p3 PT3 Earth Surface and Climate Interactions
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Title: The Cryosphere
Source Genre: Journal, SCI, Scopus, oa
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Pages: - Volume / Issue: 14 Sequence Number: - Start / End Page: 309 - 330 Identifier: CoNE: https://gfzpublic.gfz-potsdam.de/cone/journals/resource/140507
Publisher: Copernicus