Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites

Cretaceous strata preserved in Wyoming contain numerous large bentonite deposits formed from the felsic ash of volcanic eruptions, mainly derived from Idaho batholith magmatism. These bentonites preserve a near-continuous 40 m.y. chronology of volcanism and their whole-rock and mineral chemistry has...

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Main Authors: Jeffrey S. Hannon, Craig Dietsch, Warren D. Huff, Davidson Garway
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Minerals
Subjects:
Online Access:https://www.mdpi.com/2075-163X/11/9/1011
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spelling doaj-fcd084a6e70841dc85269e949c0d0e562021-09-26T00:45:07ZengMDPI AGMinerals2075-163X2021-09-01111011101110.3390/min11091011Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous BentonitesJeffrey S. Hannon0Craig Dietsch1Warren D. Huff2Davidson Garway3Department of Geoscience, University of Wisconsin Madison, Madison, WI 53706-1692, USADepartment of Geology, University of Cincinnati, Cincinnati, OH 45221-0013, USADepartment of Geology, University of Cincinnati, Cincinnati, OH 45221-0013, USADepartment of Geology, University of Cincinnati, Cincinnati, OH 45221-0013, USACretaceous strata preserved in Wyoming contain numerous large bentonite deposits formed from the felsic ash of volcanic eruptions, mainly derived from Idaho batholith magmatism. These bentonites preserve a near-continuous 40 m.y. chronology of volcanism and their whole-rock and mineral chemistry has been used to document igneous processes and reconstruct the history of Idaho magmatism as emplacement migrated across the Laurentian margin. Using LA-ICP-MS, we analyzed the U-Pb ages and Hf isotopic compositions of nearly 700 zircon grains from 44 bentonite beds from the Bighorn Basin, Wyoming. Zircon populations contain magmatic autocrysts and antecrysts which can be linked to the main pulses of the Idaho batholith and xenocrysts ranging from approx. 250 Ma to 1.84 Ga from country rocks and basement source terranes. Initial εHf compositions of Phanerozoic zircons are diverse, with compositions ranging from −26 to nearly +12. Based on temporal trends in zircon ages and geochemistry, four distinct periods of plutonic emplacement are recognized during the Mid- to Late Cretaceous that follow plutonic emplacement across the Laurentian suture zone in western Idaho and into western Montana with the onset of Farallon slab shallowing. Our data demonstrate the utility of using zircons in preserved tephra to track the regional-scale evolution of convergent margins related to terrane accretion and the spatial migration of magmatism related to changes in subduction dynamics.https://www.mdpi.com/2075-163X/11/9/1011zircongeochronologybentonitemagmatismCretaceoustephra
collection DOAJ
language English
format Article
sources DOAJ
author Jeffrey S. Hannon
Craig Dietsch
Warren D. Huff
Davidson Garway
spellingShingle Jeffrey S. Hannon
Craig Dietsch
Warren D. Huff
Davidson Garway
Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
Minerals
zircon
geochronology
bentonite
magmatism
Cretaceous
tephra
author_facet Jeffrey S. Hannon
Craig Dietsch
Warren D. Huff
Davidson Garway
author_sort Jeffrey S. Hannon
title Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
title_short Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
title_full Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
title_fullStr Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
title_full_unstemmed Tracking 40 Million Years of Migrating Magmatism across the Idaho Batholith Using Zircon U-Pb Ages and Hf Isotopes from Cretaceous Bentonites
title_sort tracking 40 million years of migrating magmatism across the idaho batholith using zircon u-pb ages and hf isotopes from cretaceous bentonites
publisher MDPI AG
series Minerals
issn 2075-163X
publishDate 2021-09-01
description Cretaceous strata preserved in Wyoming contain numerous large bentonite deposits formed from the felsic ash of volcanic eruptions, mainly derived from Idaho batholith magmatism. These bentonites preserve a near-continuous 40 m.y. chronology of volcanism and their whole-rock and mineral chemistry has been used to document igneous processes and reconstruct the history of Idaho magmatism as emplacement migrated across the Laurentian margin. Using LA-ICP-MS, we analyzed the U-Pb ages and Hf isotopic compositions of nearly 700 zircon grains from 44 bentonite beds from the Bighorn Basin, Wyoming. Zircon populations contain magmatic autocrysts and antecrysts which can be linked to the main pulses of the Idaho batholith and xenocrysts ranging from approx. 250 Ma to 1.84 Ga from country rocks and basement source terranes. Initial εHf compositions of Phanerozoic zircons are diverse, with compositions ranging from −26 to nearly +12. Based on temporal trends in zircon ages and geochemistry, four distinct periods of plutonic emplacement are recognized during the Mid- to Late Cretaceous that follow plutonic emplacement across the Laurentian suture zone in western Idaho and into western Montana with the onset of Farallon slab shallowing. Our data demonstrate the utility of using zircons in preserved tephra to track the regional-scale evolution of convergent margins related to terrane accretion and the spatial migration of magmatism related to changes in subduction dynamics.
topic zircon
geochronology
bentonite
magmatism
Cretaceous
tephra
url https://www.mdpi.com/2075-163X/11/9/1011
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