Antarctic Sedimentary Basins and Their Influence on Ice‐Sheet Dynamics

Author:

Aitken A. R. A.12ORCID,Li L.1ORCID,Kulessa B.34ORCID,Schroeder D.56ORCID,Jordan T. A.7ORCID,Whittaker J. M.8ORCID,Anandakrishnan S.9ORCID,Dawson E. J.5ORCID,Wiens D. A.10ORCID,Eisen O.1112ORCID,Siegert M. J.1314ORCID

Affiliation:

1. School of Earth Sciences The University of Western Australia Perth WA Australia

2. Australian Centre of Excellence for Antarctic Science The University of Western Australia Perth WA Australia

3. School of Biosciences, Geography and Physics Swansea University Wales UK

4. School of Geography, Planning and Spatial Sciences The University of Tasmania Hobart TAS Australia

5. Department of Geophysics Stanford University Stanford CA USA

6. Department of Electrical Engineering Stanford University Stanford CA USA

7. British Antarctic Survey Cambridgeshire UK

8. Institute for Marine and Antarctic Studies University of Tasmania Hobart TAS Australia

9. College of Earth and Mineral Sciences Pennsylvania State University University Park PA USA

10. Department of Earth & Planetary Sciences Washington University St. Louis MO USA

11. Glaciology Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research Bremerhaven Germany

12. Department of Geosciences University of Bremen Bremen Germany

13. Grantham Institute and Department of Earth Science and Engineering Imperial College London London UK

14. University of Exeter Cornwall UK

Abstract

AbstractKnowledge of Antarctica's sedimentary basins builds our understanding of the coupled evolution of tectonics, ice, ocean, and climate. Sedimentary basins have properties distinct from basement‐dominated regions that impact ice‐sheet dynamics, potentially influencing future ice‐sheet change. Despite their importance, our knowledge of Antarctic sedimentary basins is restricted. Remoteness, the harsh environment, the overlying ice sheet, ice shelves, and sea ice all make fieldwork challenging. Nonetheless, in the past decade the geophysics community has made great progress in internationally coordinated data collection and compilation with parallel advances in data processing and analysis supporting a new insight into Antarctica's subglacial environment. Here, we summarize recent progress in understanding Antarctica's sedimentary basins. We review advances in the technical capability of radar, potential fields, seismic, and electromagnetic techniques to detect and characterize basins beneath ice and advances in integrated multi‐data interpretation including machine‐learning approaches. These new capabilities permit a continent‐wide mapping of Antarctica's sedimentary basins and their characteristics, aiding definition of the tectonic development of the continent. Crucially, Antarctica's sedimentary basins interact with the overlying ice sheet through dynamic feedbacks that have the potential to contribute to rapid ice‐sheet change. Looking ahead, future research directions include techniques to increase data coverage within logistical constraints, and resolving major knowledge gaps, including insufficient sampling of the ice‐sheet bed and poor definition of subglacial basin structure and stratigraphy. Translating the knowledge of sedimentary basin processes into ice‐sheet modeling studies is critical to underpin better capacity to predict future change.

Funder

China Scholarship Council

Natural Environment Research Council

National Science Foundation

Publisher

American Geophysical Union (AGU)

Subject

Geophysics

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