Primordial neon and the deep mantle origin of kimberlites

A Andrea Giuliani M Mark D. Kurz P Peter H. Barry J Joshua M. Curtice F Finlay M. Stuart S Senan Oesch Q Quentin Charbonnier B Bradley J. Peters (Institute of Geochemistry and Petrology, Department of Earth and Planetary Science) J Janne M. Koornneef K Kristoffer Szilas D D. Graham Pearson (Department of Earth and Atmospheric Science, University of Alberta)

Abstract

Abstract The genesis of kimberlites is unclear despite the economic and scientific interest surrounding these diamond-bearing magmas. One critical question is whether they tap ancient, deep mantle domains or the shallow convecting mantle with partial melting triggered by plumes or plate tectonics. To address this question, we report the He-Ne-Ar isotopic compositions of magmatic fluids trapped in olivine from kimberlites worldwide. The kimberlites which have been least affected by addition of deeply subducted or metasomatic components have Ne isotopes less nucleogenic than the upper mantle, hence requiring a deep-mantle origin. This is corroborated by previous evidence of small negative W isotope anomalies and kimberlite location along age-progressive hot-spot tracks. The lack of strong primordial He isotope signatures indicates overprinting by lithospheric and crustal components, which suggests that Ne isotopes are more robust tracers of deep-mantle contributions in intraplate continental magmas. The most geochemically depleted kimberlites may preserve deep remnants of early-Earth heterogeneities.

Article Details

Volume / Issue Vol. 16, Issue 1
Published April 06, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (11)

A

Andrea Giuliani

M

Mark D. Kurz

P

Peter H. Barry

J

Joshua M. Curtice

F

Finlay M. Stuart

S

Senan Oesch

Q

Quentin Charbonnier

B

Bradley J. Peters

Institute of Geochemistry and Petrology, Department of Earth and Planetary Science

J

Janne M. Koornneef

K

Kristoffer Szilas

D

D. Graham Pearson

Department of Earth and Atmospheric Science, University of Alberta