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Recent advances in the study of Arctic submarine permafrost.
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- Permafrost & Periglacial Processes, 2020, v. 31, n. 3, p. 442, doi. 10.1002/ppp.2061
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Cover Image.
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- Permafrost & Periglacial Processes, 2020, v. 31, n. 3, p. i, doi. 10.1002/ppp.2082
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Sorted patterned ground in a karst cave, Ledenica pod Hrušico, Slovenia.
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- Permafrost & Periglacial Processes, 2018, v. 29, n. 2, p. 121, doi. 10.1002/ppp.1970
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Recent Progress Regarding Permafrost Coasts.
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- Permafrost & Periglacial Processes, 2013, v. 24, n. 2, p. 120, doi. 10.1002/ppp.1777
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Frost boils and soil ice content: field observations.
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- Permafrost & Periglacial Processes, 2006, v. 17, n. 4, p. 291, doi. 10.1002/ppp.567
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Organic matter characteristics of a rapidly eroding permafrost cliff in NE Siberia (Lena Delta, Laptev Sea region).
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- Biogeosciences Discussions, 2021, p. 1, doi. 10.5194/bg-2021-331
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Using the deuterium isotope composition of permafrost meltwater to constrain thermokarst lake contributions to atmospheric CH<sub>4</sub> during the last deglaciation.
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- Journal of Geophysical Research. Biogeosciences, 2012, v. 117, n. G1, p. n/a, doi. 10.1029/2011JG001810
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Subsea permafrost organic carbon stocks are large and of dominantly low reactivity.
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- Scientific Reports, 2023, v. 13, n. 1, p. 1, doi. 10.1038/s41598-023-36471-z
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Strong increase in thawing of subsea permafrost in the 22nd century caused by anthropogenic climate change.
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- Cryosphere, 2022, v. 16, n. 3, p. 1057, doi. 10.5194/tc-16-1057-2022
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Observing Muostakh disappear: permafrost thaw subsidence and erosion of a ground-ice-rich island in response to arctic summer warming and sea ice reduction.
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- Cryosphere, 2015, v. 9, n. 1, p. 151, doi. 10.5194/tc-9-151-2015
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Submarine permafrost depth from ambient seismic noise.
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- Geophysical Research Letters, 2015, v. 42, n. 18, p. 7581, doi. 10.1002/2015GL065409
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Microbial community composition and abundance after millennia of submarine permafrost warming.
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- Biogeosciences, 2019, v. 16, n. 19, p. 3941, doi. 10.5194/bg-16-3941-2019
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Nucleotide sequence of the ugp genes of Escherichia coli K-12: homoiogy to the maltose system.
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- Molecular Microbiology, 1988, v. 2, n. 6, p. 767, doi. 10.1111/j.1365-2958.1988.tb00088.x
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Onshore Thermokarst Primes Subsea Permafrost Degradation.
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- Geophysical Research Letters, 2021, v. 48, n. 20, p. 1, doi. 10.1029/2021GL093881
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Transient Electromagnetic Surveys for the Determination of Talik Depth and Geometry Beneath Thermokarst Lakes.
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- Journal of Geophysical Research. Solid Earth, 2018, v. 123, n. 11, p. 9310, doi. 10.1029/2018JB016121
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The development of permafrost bacterial communities under submarine conditions.
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- Journal of Geophysical Research. Biogeosciences, 2017, v. 122, n. 7, p. 1689, doi. 10.1002/2017JG003859
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Microbial lipid signatures and substrate potential of organic matter in permafrost deposits: Implications for future greenhouse gas production.
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- Journal of Geophysical Research. Biogeosciences, 2016, v. 121, n. 10, p. 2652, doi. 10.1002/2016JG003483
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Submarine Permafrost Map in the Arctic Modeled Using 1‐D Transient Heat Flux (SuPerMAP).
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- Journal of Geophysical Research. Oceans, 2019, v. 124, n. 6, p. 3490, doi. 10.1029/2018JC014675
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Ocean Colour remote sensing in the Southern Laptev Sea: evaluation and applications.
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- Biogeosciences Discussions, 2013, v. 10, n. 2, p. 3849, doi. 10.5194/bgd-10-3849-2013
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Short and long-term thermo-erosion of ice-rich permafrost coasts in the Laptev Sea region.
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- Biogeosciences Discussions, 2013, v. 10, n. 2, p. 2705, doi. 10.5194/bgd-10-2705-2013
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Organic matter characteristics of a rapidly eroding permafrost cliff in NE Siberia (Lena Delta, Laptev Sea region).
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- Biogeosciences, 2022, v. 19, n. 7, p. 2079, doi. 10.5194/bg-19-2079-2022
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- Article
Strong Increase of Thawing of Subsea Permafrost in the 22nd Century Caused by Anthropogenic Climate Change.
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- Cryosphere Discussions, 2021, p. 1, doi. 10.5194/tc-2021-231
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- Article