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Güntzel, Janina; Müller, Juliane; Lembke-Jene, Lester; Tiedemann, Ralf; Mollenhauer, Gesine; Klages, Johann Philipp (2026): Sedimentological, geochemical and sediment-physical analysis of eight sediment cores from the Mac. Robertson Shelf, East Antarctica [dataset bundled publication]. PANGAEA, https://doi.org/10.1594/PANGAEA.982379

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Published: 2026-06-29DOI registered: 2026-06-29

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Abstract:
The future behavior of the Antarctic Ice Sheet is considered to be one of the largest uncertainties in global climate projections, with its stability fundamentally governed by grounding-zone processes, bed geometry, and sensitivity to oceanic forcing. However, observational records only reflect a short moment when considering the length of a full cycle of ice sheet expansion and retreat. Therefore, paleo-data present a valuable extension to the observational period. East Antarctica's deglaciation history remains largely understudied compared to the West Antarctic margin. This emphasizes the urgent need for reliable long-term spatiotemporal data on ice sheet change, particularly for sectors that play key roles in supplying the world's oceans with dense bottom water. In this study, we performed a multi-proxy analysis on geophysical and geological data recovered from two prominent glacial cross-shelf troughs on the Mac. Robertson continental shelf. We classified submarine glacial landforms on the continental shelf along both troughs from combined multibeam swath bathymetry and sub-bottom profiler data to infer past grounding line extent and the pattern of subsequent grounding line retreat. Additionally, combined sedimentological, sediment-physical, and geochemical analyses, including foraminifer radiocarbon dating, reveal the style and timing of this retreat across the shelf. Our study concludes that grounded ice reached the Mac. Robertson continental shelf break until just before ~12.7 cal. ka BP, hence preventing the formation of Dense Shelf Water (DSW) in its current form. We therefore infer a different formation mechanism for DSW as an important precursor of Antarctic Bottom Water under such full glacial conditions before continued grounding-line retreat exposed the middle continental shelf by ~10.8 cal. ka BP and set the stage for more modern-like conditions.
Keyword(s):
Antarctic Shelf; East Antarctica; Polarstern; Radiocarbon ages; Sedimentology-marine cores
Supplement to:
Güntzel, Janina; Müller, Juliane; Tiedemann, Ralf; Mollenhauer, Gesine; Lembke-Jene, Lester; Weigelt, Estella; Schopen, Lasse; Wesch, Niklas; Kattein, Laura; Mackintosh, Andrew; Klages, Johann Philipp (2026): Last Glacial Maximum extent and subsequent retreat of the East Antarctic Ice Sheet from the Mac. Robertson Shelf. The Cryosphere, 20(7), 3739-3758, https://doi.org/10.5194/tc-20-3739-2026
Coverage:
Median Latitude: -66.976007 * Median Longitude: 64.699175 * South-bound Latitude: -67.142285 * West-bound Longitude: 63.188230 * North-bound Latitude: -66.828596 * East-bound Longitude: 65.817210
Date/Time Start: 2022-02-09T10:00:57 * Date/Time End: 2022-02-10T21:34:36
License:
Creative Commons Attribution 4.0 International (CC-BY-4.0) (License comes into effect after moratorium ends)
Size:
14 datasets

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Datasets listed in this bundled publication

  1. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_38-2. https://doi.org/10.1594/PANGAEA.982388
  2. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Age determination of sediment core PS128_39-1. https://doi.org/10.1594/PANGAEA.982389
  3. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_39-1. https://doi.org/10.1594/PANGAEA.982381
  4. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_41-1. https://doi.org/10.1594/PANGAEA.982382
  5. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_42-1. https://doi.org/10.1594/PANGAEA.982383
  6. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Age determination of sediment core PS128_44-1. https://doi.org/10.1594/PANGAEA.982390
  7. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Geochemical and sediment-physical analysis of sediment core PS128_44-1. https://doi.org/10.1594/PANGAEA.982387
  8. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological analysis of sediment core PS128_44-1. https://doi.org/10.1594/PANGAEA.982380
  9. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Age determination of sediment core PS128_45-1. https://doi.org/10.1594/PANGAEA.982391
  10. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_45-1. https://doi.org/10.1594/PANGAEA.982384
  11. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Age determination of sediment core PS128_46-1. https://doi.org/10.1594/PANGAEA.982392
  12. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_46-1. https://doi.org/10.1594/PANGAEA.982385
  13. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Age determination of sediment core PS128_47-1. https://doi.org/10.1594/PANGAEA.982393
  14. Güntzel, J; Müller, J; Lembke-Jene, L et al. (2026): Sedimentological, geochemical and sediment-physical analysis of sediment core PS128_47-1. https://doi.org/10.1594/PANGAEA.982386