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Meteoritic Evidence for a Ceres-sized Water-rich Carbonaceous Chondrite Parent Asteroid

Overview
Journal Nat Astron
Publisher Springer Nature
Date 2021 Mar 8
PMID 33681472
Citations 3
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Abstract

Carbonaceous chondrite meteorites record the earliest stages of Solar System geo-logical activities and provide insight into their parent bodies' histories. Some carbonaceous chondrites are volumetrically dominated by hydrated minerals, providing evidence for low temperature and pressure aqueous alteration. Others are dominated by anhydrous minerals and textures that indicate high temperature metamorphism in the absence of aqueous fluids. Evidence of hydrous metamorphism at intermediate pressures and temperatures in carbonaceous chondrite parent bodies has been virtually absent. Here we show that an ungrouped, aqueously altered carbonaceous chondrite fragment (numbered 202) from the Almahata Sitta (AhS) meteorite contains an assemblage of minerals, including amphibole, that reflect fluid-assisted metamorphism at intermediate temperatures and pressures on the parent asteroid. Amphiboles are rare in carbonaceous chondrites, having only been identified previously as a trace component in Allende (CV3) chondrules. Formation of these minerals requires prolonged metamorphism in a large (~640-1800 km diameter), unknown asteroid. Because Allende and AhS 202 represent different asteroidal parent bodies, intermediate conditions may have been more widespread in the early Solar System than recognized from known carbonaceous chondrite meteorites, which are likely a biased sampling.

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References
1.
Jenniskens P, Shaddad M, Numan D, Elsir S, Kudoda A, Zolensky M . The impact and recovery of asteroid 2008 TC(3). Nature. 2009; 458(7237):485-8. DOI: 10.1038/nature07920. View

2.
Kitazato K, Milliken R, Iwata T, Abe M, Ohtake M, Matsuura S . The surface composition of asteroid 162173 Ryugu from Hayabusa2 near-infrared spectroscopy. Science. 2019; 364(6437):272-275. DOI: 10.1126/science.aav7432. View

3.
Hamilton V, Simon A, Christensen P, Reuter D, Clark B, Barucci M . Evidence for widespread hydrated minerals on asteroid (101955) Bennu. Nat Astron. 2019; 3(4):332-340. PMC: 6662227. DOI: 10.1038/s41550-019-0722-2. View

4.
Simon A, Kaplan H, Hamilton V, Lauretta D, Campins H, Emery J . Widespread carbon-bearing materials on near-Earth asteroid (101955) Bennu. Science. 2020; 370(6517). DOI: 10.1126/science.abc3522. View

5.
Kaplan H, Lauretta D, Simon A, Hamilton V, DellaGiustina D, Golish D . Bright carbonate veins on asteroid (101955) Bennu: Implications for aqueous alteration history. Science. 2020; 370(6517). DOI: 10.1126/science.abc3557. View