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Peer-reviewed articles:

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Paleobathymetric reconstructions of the SW Barents Seaway and their implications for Atlantic–Arctic ocean circulation.
Lasabuda, A.P.E., Hanssen, A., Laberg, J.S., Faleide, J.I., Patton, H., Abdelmalak, M.M., Rydningen, T.A., Kjølhamar, B., 2023. Commun Earth Environ 4, 1–17. https://doi.org/10.1038/s43247-023-00899-y
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Sedimentary deformation relating to episodic seepage in the last 1.2 million years: a multi-scale seismic study from the Vestnesa Ridge, eastern Fram Strait.
Cooke, F., Plaza-Faverola, A., Bünz, S., Sultan, N., Ramachandran, H., Bedle, H., Patton, H., Singhroha, S., Knies, J., 2023. Frontiers in Earth Science 11. https://doi.org/10.3389/feart.2023.1188737
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Distinct modes of meltwater drainage and landform development beneath the last Barents Sea ice sheet.
Shackleton, C., Patton, H., Winsborrow, M., Esteves, M., Bjarnadóttir, L., Andreassen, K., 2023. Frontiers in Earth Science 11. https://doi.org/10.3389/feart.2023.1111396
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Widespread natural methane and oil leakage from sub-marine Arctic reservoirs.
Serov, P., Mattingsdal, R., Winsborrow, M., Patton, H., Andreassen, K., 2023. Nat Commun 14, 1782. https://doi.org/10.1038/s41467-023-37514-9
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The extreme yet transient nature of glacial erosion.
Patton, H., Hubbard, A., Heyman, J., Alexandropoulou, N., Lasabuda, A.P.E., Stroeven, A.P., Hall, A.M., Winsborrow, M., Sugden, D.E., Kleman, J., Andreassen, K., 2022. Nature Communications 13, 7377. https://doi.org/10.1038/s41467-022-35072-0
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Glacially induced stress across the Arctic from the Eemian interglacial to the present - implications for faulting and methane seepage.
Vachon, R., Schmidt, P., Lund, B., Plaza-Faverola, A., Patton, H., Hubbard, A., 2022. Journal of Geophysical Research: Solid Earth 127, e2022JB024272. https://doi.org/10.1029/2022JB024272
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The role of ocean and atmospheric dynamics in the marine-based collapse of the last Eurasian Ice Sheet.
Sejrup, H.P., Hjelstuen, B.O., Patton, H., Esteves, M., Winsborrow, M., Rasmussen, T.L., Andreassen, K., Hubbard, A., 2022. Communications Earth and Environment 3, 1–10. https://doi.org/10.1038/s43247-022-00447-0
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Hydrocarbon leakage driven by Quaternary glaciations in the Barents Sea based on 2D basin and petroleum system modeling.
Kishankov, A., Serov, P., Bünz, S., Patton, H., Hubbard, A., Mattingsdal, R., Vadakkepuliyambatta, S., Andreassen, K., 2022. Marine and Petroleum Geology 138, 105557. https://doi.org/10.1016/j.marpetgeo.2022.105557
Cenozoic uplift and erosion of the Norwegian Barents Shelf – A review.
Lasabuda, A.P.E., Johansen, N.S., Laberg, J.S., Faleide, J.I., Senger, K., Rydningen, T.A., Patton, H., Knutsen, S.-M., Hanssen, A., 2021. Earth-Science Reviews 217, 103609. https://doi.org/10.1016/j.earscirev.2021.103609
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Modification of bedrock surfaces by glacial abrasion and quarrying: Evidence from North Wales.
Glasser, N.F., Roman, M., Holt, T.O., Žebre, M., Patton, H., Hubbard, A.L., 2020. Geomorphology 365, 107283. https://doi.org/10.1016/j.geomorph.2020.107283
Elevation Changes of the Fennoscandian Ice Sheet Interior During the Last Deglaciation.
Lane, T.P., Paasche, Ø., Kvisvik, B., Adamson, K.R., Rodés, Á., Patton, H., Gomez, N., Gheorghiu, D., Bakke, J., Hubbard, A., 2020. Geophysical Research Letters 47. https://doi.org/10.1029/2020gl088796
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Is there a climatic control on Icelandic volcanism?
Cooper, C.L., Savov, I.P., Patton, H., Hubbard, A., Ivanovic, R.F., Carrivick, J.L., Swindles, G.T., 2020. Quaternary Science Advances 1, 100004. https://doi.org/10.1016/j.qsa.2020.100004
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Icelandic permafrost dynamics since the Last Glacial Maximum – model results and geomorphological implications.
Etzelmüller, B., Patton, H., Schomacker, A., Czekirda, J., Girod, L., Hubbard, A., Lilleøren, K.S., Westermann, S., 2020. Quaternary Science Reviews 233, 106236. https://doi.org/10.1016/j.quascirev.2020.106236
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Gas hydrate dissociation off Svalbard induced by isostatic rebound rather than global warming.
Wallmann, K., Riedel, M., Hong, W.L., Patton, H., Hubbard, A., Pape, T., Hsu, C.W., Schmidt, C., Johnson, J.E., Torres, M.E., Andreassen, K., Berndt, C., Bohrmann, G., 2018. Nature Communications 9, 83. https://doi.org/10.1038/s41467-017-02550-9
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Subglacial water storage and drainage beneath the Fennoscandian and Barents Sea ice sheets.
Shackleton, C., Patton, H., Hubbard, A., Winsborrow, M., Kingslake, J., Esteves, M., Andreassen, K., Greenwood, S.L., 2018. Quaternary Science Reviews 201, 13–28. https://doi.org/10.1016/J.QUASCIREV.2018.10.007
Deglaciation of the Eurasian ice sheet complex.
Patton, H., Hubbard, A., Andreassen, K., Auriac, A., Whitehouse, P., Stroeven, A.P., Shackleton, C., Winsborrow, M.C.M., Heyman, J., Hall, A.M., 2017. Quaternary Science Reviews 169, 148–172. https://doi.org/10.1016/j.quascirev.2017.05.019
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Postglacial response of Arctic Ocean gas hydrates to climatic amelioration.
Serov, P., Vadakkepuliyambatta, S., Mienert, J., Patton, H., Portnov, A., Silyakova, A., Panieri, G., Carroll, M.L., Carroll, J., Andreassen, K., Hubbard, A., 2017. Proceedings of the National Academy of Sciences 114, 6215–6220. https://doi.org/10.1073/pnas.1619288114
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Massive blow-out craters formed by hydrate-controlled methane expulsion from the Arctic seafloor.
Andreassen, K., Hubbard, A., Winsborrow, M., Patton, H., Vadakkepuliyambatta, S., Plaza-Faverola, A., Gudlaugsson, E., Serov, P., Deryabin, A., Mattingsdal, R., Mienert, J., Bünz, S., 2017. Science 356, 948–953. https://doi.org/10.1126/science.aal4500
The configuration, sensitivity and rapid retreat of the Late Weichselian Icelandic ice sheet.
Patton, H., Hubbard, A., Bradwell, T., Schomacker, A., 2017. Earth-Science Reviews 166, 223–245. https://doi.org/10.1016/j.earscirev.2017.02.001
The build-up, configuration, and dynamical sensitivity of the Eurasian ice-sheet complex to Late Weichselian climatic and oceanic forcing.
Patton, H., Hubbard, A., Andreassen, K., Winsborrow, M., Stroeven, A.P., 2016. Quaternary Science Reviews 153, 97–121. https://doi.org/10.1016/j.quascirev.2016.10.009
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Distribution and characteristics of overdeepenings beneath the Greenland and Antarctic ice sheets: Implications for overdeepening origin and evolution.
Patton, H., Swift, D.A., Clark, C.D., Livingstone, S.J., Cook, S.J., 2016. Quaternary Science Reviews 148, 128–145. https://doi.org/10.1016/j.quascirev.2016.07.012
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Glacial isostatic adjustment associated with the Barents Sea ice sheet: a modelling inter-comparison.
Auriac, A., Whitehouse, P.L., Bentley, M.J., Patton, H., Lloyd, J.M., Hubbard, A., 2016. Quaternary Science Reviews 147, 122–135. https://doi.org/10.1016/j.quascirev.2016.02.011
Regulation of ice stream flow through subglacial formation of gas hydrates.
Winsborrow, M., Andreassen, K., Hubbard, A., Plaza-Faverola, A., Gudlaugsson, E., Patton, H., 2016. Nature Geoscience 9, 370–374. https://doi.org/10.1038/ngeo2696
Geophysical constraints on the dynamics and retreat of the Barents Sea Ice Sheet as a palaeo-benchmark for models of marine ice-sheet deglaciation.
Patton, H., Andreassen, K., Bjarnadóttir, L.R., Dowdeswell, J.A., Winsborrow, M.C.M., Noormets, R., Polyak, L., Auriac, A., Hubbard, A., 2015. Geophysical constraints on the dynamics and retreat of the Barents Sea Ice Sheet as a palaeo-benchmark for models of marine ice-sheet deglaciation. Reviews of Geophysics 53, 1051–1098. https://doi.org/10.1002/2015RG000495
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Amplified melt and flow of the Greenland ice sheet driven by late-summer cyclonic rainfall.
Doyle, S.H., Hubbard, A., van de Wal, R.S.W., Box, J.E., Van As, D., Scharrer, K., Meierbachtol, T.W., Smeets, P.C.J.P., Harper, J.T., Johansson, E., Mottram, R.H., Mikkelsen, A.B., Wilhelms, F., Patton, H., Christoffersen, P., Hubbard, B., 2015. Nature Geoscience 8, 647–653. https://doi.org/10.1038/ngeo2482
Automated mapping of glacial overdeepenings beneath contemporary ice sheets: Approaches and potential applications.
Patton, H., Swift, D.A., Clark, C.D., Livingstone, S.J., Cook, S.J., Hubbard, A., 2015. Geomorphology 232, 209–223. https://doi.org/10.1016/j.geomorph.2015.01.003
Ice–ocean interaction and calving front morphology at two west Greenland tidewater outlet glaciers.
Chauché, N., Hubbard, A., Gascard, J.-C., Box, J.E.E., Bates, R., Koppes, M., Sole, A., Christoffersen, P., Patton, H., 2014. The Cryosphere 8, 1457–1468. https://doi.org/10.5194/tc-8-1457-2014
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Rapid marine deglaciation: asynchronous retreat dynamics between the Irish Sea Ice Stream and terrestrial outlet glaciers.
Patton, H., Hubbard, A.L., Bradwell, T., Glasser, N.F., Hambrey, M.J., Clark, C.D., 2013. Earth Surface Dynamics 1, 53–65. https://doi.org/10.5194/esurf-1-53-2013
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The last Welsh Ice Cap: Part 2 - Dynamics of a topographically controlled icecap.
Patton, H., Hubbard, A., Glasser, N.F., Bradwell, T., Golledge, N.R., 2013. Boreas 42, 491–510. https://doi.org/10.1111/j.1502-3885.2012.00301.x
The last Welsh Ice Cap: Part 1 - Modelling its evolution, sensitivity and associated climate.
Patton, H., Hubbard, A., Glasser, N.F., Bradwell, T., Golledge, N.R., 2013. Boreas 42, 471–490. https://doi.org/10.1111/j.1502-3885.2012.00300.x
Evaluation of a numerical model of the British-Irish ice sheet using relative sea-level data: implications for the interpretation of trimline observations.
Kuchar, J., Milne, G., Hubbard, A., Patton, H., Bradley, S., Shennan, I., Edwards, R., 2012. Journal of Quaternary Science 27, 597–605. https://doi.org/10.1002/jqs.2552
Dynamic cycles, ice streams and their impact on the extent, chronology and deglaciation of the British–Irish ice sheet.
Hubbard, A., Bradwell, T., Golledge, N., Hall, A., Patton, H., Sugden, D., Cooper, R., Stoker, M., 2009. Quaternary Science Reviews 28, 758–776. https://doi.org/10.1016/j.quascirev.2008.12.026
Ice-marginal sedimentation associated with the Late Devensian Welsh Ice Cap and the Irish Sea Ice Stream: Tonfanau, West Wales.
Patton, H., Hambrey, M.J., 2009. Proceedings of the Geologists’ Association 120, 256–274.https://doi.org/10.1016/j.pgeola.2009.10.004

Book chapters:

Publication
Esteves, M., Patton, H., Winsborrow, M.C.M., 2023. Chapter 13 - The Eurasian Arctic: glacial landforms during main deglaciation (18.9–14.6 ka), in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 111–117. https://doi.org/10.1016/B978-0-323-91899-2.00006-1
Patton, H., Winsborrow, M.C.M., Esteves, M., 2023. Chapter 32 - The Eurasian Arctic: glacial landforms from the Bølling–Allerød Interstadial (14.6–12.9 ka), in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 311–317. https://doi.org/10.1016/B978-0-323-91899-2.00001-2
Allaart, L., Patton, H., Esteves, M., 2023. Chapter 50 - The Eurasian Arctic: glacial landforms from the Younger Dryas (12.9–11.7 ka), in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 473–479. https://doi.org/10.1016/B978-0-323-91899-2.00062-0
Winsborrow, M.C.M., Patton, H., Esteves, M., 2022. Chapter 8 - The Eurasian Arctic, in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 59–64. https://doi.org/10.1016/B978-0-12-823498-3.00036-4
Winsborrow, M.C.M., Patton, H., Esteves, M., Alexandropoulou, N., 2022. Chapter 32 - The Eurasian Arctic: glacial landforms prior to the Last Glacial Maximum (before 29ka), in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 233–240. https://doi.org/10.1016/B978-0-12-823498-3.00037-6
Patton, H., Winsborrow, M.C.M., Esteves, M., 2022. Chapter 51 - The Eurasian Arctic: glacial landforms from the Last Glacial Maximum, in: Palacios, D., Hughes, P.D., García-Ruiz, J.M., Andrés, N. (Eds.), European Glacial Landscapes. Elsevier, pp. 395–399. https://doi.org/10.1016/B978-0-12-823498-3.00025-X