Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica

Alkaline magmatism associated with the West Antarctic rift system in the NW Ross Sea (NWRS) includes a north-south chain of shield volcano complexes extending 260km along the coast of Northern Victoria Land (NVL), numerous small volcanic seamounts located on the continental shelf and hundreds more w...

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Published in:Journal of Petrology
Main Authors: Panter, Kurt S., Castillo, Paterno, Krans, Susan, Deering, Chad, McIntosh, William, Valley, John W., Kitajima, Kouki, Kyle, Philip, Hart, Stan, Blusztajn, Jerzy
Format: Text
Language:unknown
Published: Digital Commons @ Michigan Tech 2018
Subjects:
Online Access:https://digitalcommons.mtu.edu/michigantech-p/15199
https://doi.org/10.1093/petrology/egy036
id ftmichigantuniv:oai:digitalcommons.mtu.edu:michigantech-p-34501
record_format openpolar
institution Open Polar
collection Michigan Technological University: Digital Commons @ Michigan Tech
op_collection_id ftmichigantuniv
language unknown
topic 40Ar/39Ar ages
Geochemistry
Sr-Nd-Pb-O isotopes
West Antarctic rift system
Department of Geological and Mining Engineering and Sciences
Geological Engineering
Mining Engineering
spellingShingle 40Ar/39Ar ages
Geochemistry
Sr-Nd-Pb-O isotopes
West Antarctic rift system
Department of Geological and Mining Engineering and Sciences
Geological Engineering
Mining Engineering
Panter, Kurt S.
Castillo, Paterno
Krans, Susan
Deering, Chad
McIntosh, William
Valley, John W.
Kitajima, Kouki
Kyle, Philip
Hart, Stan
Blusztajn, Jerzy
Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
topic_facet 40Ar/39Ar ages
Geochemistry
Sr-Nd-Pb-O isotopes
West Antarctic rift system
Department of Geological and Mining Engineering and Sciences
Geological Engineering
Mining Engineering
description Alkaline magmatism associated with the West Antarctic rift system in the NW Ross Sea (NWRS) includes a north-south chain of shield volcano complexes extending 260km along the coast of Northern Victoria Land (NVL), numerous small volcanic seamounts located on the continental shelf and hundreds more within an ~35 000km2 area of the oceanic Adare Basin. New 40Ar/39Ar age dating and geochemistry confirm that the seamounts are of Pliocene-Pleistocene age and petrogenetically akin to the mostly middle to late Miocene volcanism on the continent, as well as to a much broader region of diffuse alkaline volcanism that encompasses areas of West Antarctica, Zealandia and eastern Australia. All of these continental regions were contiguous prior to the late-stage breakup of Gondwana at ~100 Ma, suggesting that the magmatism is interrelated, yet the mantle source and cause of melting remain controversial. The NWRS provides a rare opportunity to study cogenetic volcanism across the transition from continent to ocean and consequently offers a unique perspective from which to evaluate mantle processes and the roles of lithospheric and sublithospheric sources for mafic alkaline magmas. Mafic alkaline magmas with > 6wt % MgO (alkali basalt, basanite, hawaiite, and tephrite) erupted across the transition from continent to ocean in the NWRS show a remarkable systematic increase in silica-undersaturation, P2O5, Sr, Zr, Nb and light rare earth element (LREE) concentrations, as well as LREE/HREE (heavy REE) and Nb/Y ratios. Radiogenic isotopes also vary, with Nd and Pb isotopic compositions increasing and Sr isotopic compositions decreasing oceanward. These variations cannot be explained by shallow-level crustal contamination or by changes in the degree of mantle partial melting, but are considered to be a function of the thickness and age of the mantle lithosphere. We propose that the isotopic signature of the most silica-undersaturated and incompatible element enriched basalts best represent the composition of the sub-lithospheric magma source with low 87Sr/86Sr (≤0.7030) and δ18Oolivine (≤5.0‰), and high 143Nd/144Nd (~0.5130) and 206Pb/204Pb (≥20). The isotopic 'endmember' signature of the sub-lithospheric source is derived from recycled subducted materials and was transferred to the lithospheric mantle by small-degree melts (carbonate-rich silicate liquids) to form amphibole-rich metasomes. Later melting of the metasomes produced silica-undersaturated liquids that reacted with the surrounding peridotite. This reaction occurred to a greater extent as the melt traversed through thicker and older lithosphere continentward. Ancient and/or more recent (~550-100 Ma) subduction along the Pan-Pacific margin of Gondwana supplied the recycled subduction-related material to the asthenosphere. Melting and carbonate metasomatism were triggered during major episodes of extension beginning in the Late Cretaceous, but alkaline magmatism was very limited in its extent. A significant delay of ~30 to 20 Myr between extension and magmatism was probably controlled by conductive heating and the rate of thermal migration at the base of the lithosphere. Heating was facilitated by regional mantle upwelling, possibly driven by slab detachment and sinking into the lower mantle and/or by edge-driven mantle flow established at the boundary between the thinned lithosphere of the West Antarctic rift and the thick East Antarctic craton.
format Text
author Panter, Kurt S.
Castillo, Paterno
Krans, Susan
Deering, Chad
McIntosh, William
Valley, John W.
Kitajima, Kouki
Kyle, Philip
Hart, Stan
Blusztajn, Jerzy
author_facet Panter, Kurt S.
Castillo, Paterno
Krans, Susan
Deering, Chad
McIntosh, William
Valley, John W.
Kitajima, Kouki
Kyle, Philip
Hart, Stan
Blusztajn, Jerzy
author_sort Panter, Kurt S.
title Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
title_short Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
title_full Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
title_fullStr Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
title_full_unstemmed Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica
title_sort melt origin across a rifted continental margin: a case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, nw ross sea, antarctica
publisher Digital Commons @ Michigan Tech
publishDate 2018
url https://digitalcommons.mtu.edu/michigantech-p/15199
https://doi.org/10.1093/petrology/egy036
long_lat ENVELOPE(170.233,170.233,-71.283,-71.283)
ENVELOPE(175.000,175.000,-71.000,-71.000)
geographic Adare
Adare Basin
Antarctic
Pacific
Ross Sea
Victoria Land
West Antarctica
geographic_facet Adare
Adare Basin
Antarctic
Pacific
Ross Sea
Victoria Land
West Antarctica
genre Antarc*
Antarctic
Antarctica
Ross Sea
Victoria Land
West Antarctica
genre_facet Antarc*
Antarctic
Antarctica
Ross Sea
Victoria Land
West Antarctica
op_source Michigan Tech Publications
op_relation https://digitalcommons.mtu.edu/michigantech-p/15199
https://doi.org/10.1093/petrology/egy036
op_doi https://doi.org/10.1093/petrology/egy036
container_title Journal of Petrology
container_volume 59
container_issue 3
container_start_page 517
op_container_end_page 558
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spelling ftmichigantuniv:oai:digitalcommons.mtu.edu:michigantech-p-34501 2023-05-15T14:00:23+02:00 Melt origin across a rifted continental margin: A case for subduction-related metasomatic agents in the lithospheric source of alkaline basalt, NW Ross Sea, Antarctica Panter, Kurt S. Castillo, Paterno Krans, Susan Deering, Chad McIntosh, William Valley, John W. Kitajima, Kouki Kyle, Philip Hart, Stan Blusztajn, Jerzy 2018-04-10T07:00:00Z https://digitalcommons.mtu.edu/michigantech-p/15199 https://doi.org/10.1093/petrology/egy036 unknown Digital Commons @ Michigan Tech https://digitalcommons.mtu.edu/michigantech-p/15199 https://doi.org/10.1093/petrology/egy036 Michigan Tech Publications 40Ar/39Ar ages Geochemistry Sr-Nd-Pb-O isotopes West Antarctic rift system Department of Geological and Mining Engineering and Sciences Geological Engineering Mining Engineering text 2018 ftmichigantuniv https://doi.org/10.1093/petrology/egy036 2022-01-23T10:28:00Z Alkaline magmatism associated with the West Antarctic rift system in the NW Ross Sea (NWRS) includes a north-south chain of shield volcano complexes extending 260km along the coast of Northern Victoria Land (NVL), numerous small volcanic seamounts located on the continental shelf and hundreds more within an ~35 000km2 area of the oceanic Adare Basin. New 40Ar/39Ar age dating and geochemistry confirm that the seamounts are of Pliocene-Pleistocene age and petrogenetically akin to the mostly middle to late Miocene volcanism on the continent, as well as to a much broader region of diffuse alkaline volcanism that encompasses areas of West Antarctica, Zealandia and eastern Australia. All of these continental regions were contiguous prior to the late-stage breakup of Gondwana at ~100 Ma, suggesting that the magmatism is interrelated, yet the mantle source and cause of melting remain controversial. The NWRS provides a rare opportunity to study cogenetic volcanism across the transition from continent to ocean and consequently offers a unique perspective from which to evaluate mantle processes and the roles of lithospheric and sublithospheric sources for mafic alkaline magmas. Mafic alkaline magmas with > 6wt % MgO (alkali basalt, basanite, hawaiite, and tephrite) erupted across the transition from continent to ocean in the NWRS show a remarkable systematic increase in silica-undersaturation, P2O5, Sr, Zr, Nb and light rare earth element (LREE) concentrations, as well as LREE/HREE (heavy REE) and Nb/Y ratios. Radiogenic isotopes also vary, with Nd and Pb isotopic compositions increasing and Sr isotopic compositions decreasing oceanward. These variations cannot be explained by shallow-level crustal contamination or by changes in the degree of mantle partial melting, but are considered to be a function of the thickness and age of the mantle lithosphere. We propose that the isotopic signature of the most silica-undersaturated and incompatible element enriched basalts best represent the composition of the sub-lithospheric magma source with low 87Sr/86Sr (≤0.7030) and δ18Oolivine (≤5.0‰), and high 143Nd/144Nd (~0.5130) and 206Pb/204Pb (≥20). The isotopic 'endmember' signature of the sub-lithospheric source is derived from recycled subducted materials and was transferred to the lithospheric mantle by small-degree melts (carbonate-rich silicate liquids) to form amphibole-rich metasomes. Later melting of the metasomes produced silica-undersaturated liquids that reacted with the surrounding peridotite. This reaction occurred to a greater extent as the melt traversed through thicker and older lithosphere continentward. Ancient and/or more recent (~550-100 Ma) subduction along the Pan-Pacific margin of Gondwana supplied the recycled subduction-related material to the asthenosphere. Melting and carbonate metasomatism were triggered during major episodes of extension beginning in the Late Cretaceous, but alkaline magmatism was very limited in its extent. A significant delay of ~30 to 20 Myr between extension and magmatism was probably controlled by conductive heating and the rate of thermal migration at the base of the lithosphere. Heating was facilitated by regional mantle upwelling, possibly driven by slab detachment and sinking into the lower mantle and/or by edge-driven mantle flow established at the boundary between the thinned lithosphere of the West Antarctic rift and the thick East Antarctic craton. Text Antarc* Antarctic Antarctica Ross Sea Victoria Land West Antarctica Michigan Technological University: Digital Commons @ Michigan Tech Adare ENVELOPE(170.233,170.233,-71.283,-71.283) Adare Basin ENVELOPE(175.000,175.000,-71.000,-71.000) Antarctic Pacific Ross Sea Victoria Land West Antarctica Journal of Petrology 59 3 517 558