A 29-year natural experiment constrains Fe−Mg diffusion rates in olivine

Fe−Mg diffusion in olivine is the most widely used chronometer for extracting the time scales of magmatic processes that drive pre-eruptive volcanic unrest. Yet experimental calibrations of diffusion rates disagree: melt−solid diffusion couples yield rates up to ten times faster than the solid−solid couples underlying canonical values, and whether this discrepancy applies to natural magmas remains untested. The 1959 eruption of Kīlauea Iki (Hawaiʻi, USA) created a rootless lava lake that was repeatedly drilled and sampled over 29 yr as it cooled, preserving petrological snapshots of diffusive re-equilibration on decadal time scales that are inaccessible in the laboratory. Here, we model olivine from drill cores collected between 1960 and 1988 by coupling a 3-D lava-lake cooling model to diffusion models of olivine populations re-equilibrating with their host melt. Matching the measured compositions requires Fe−Mg diffusivities 5−15 times faster than canonical values, independently confirming the faster melt−solid rates and implying that many published pre-eruptive time scales are correspondingly too long.

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Publication Details

Journal
Geology
Published
2026-10-06
DOI
https://doi.org/10.1130/g55140.1
Primary Topic
Geological and Geochemical Analysis
Type
article
Field-Weighted Citation Impact
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article

A 29-year natural experiment constrains Fe−Mg diffusion rates in olivine

THOMAS B. SHEA, Rosalind Tuthill Helz, Nabila Nizam
Geology
Geological and Geochemical Analysis
article

A 29-year natural experiment constrains Fe−Mg diffusion rates in olivine

THOMAS B. SHEA, Rosalind Tuthill Helz, Nabila Nizam
article en

Abstract

Fe−Mg diffusion in olivine is the most widely used chronometer for extracting the time scales of magmatic processes that drive pre-eruptive volcanic unrest. Yet experimental calibrations of diffusion rates disagree: melt−solid diffusion couples yield rates up to ten times faster than the solid−solid couples underlying canonical values, and whether this discrepancy applies to natural magmas remains untested. The 1959 eruption of Kīlauea Iki (Hawaiʻi, USA) created a rootless lava lake that was repeatedly drilled and sampled over 29 yr as it cooled, preserving petrological snapshots of diffusive re-equilibration on decadal time scales that are inaccessible in the laboratory. Here, we model olivine from drill cores collected between 1960 and 1988 by coupling a 3-D lava-lake cooling model to diffusion models of olivine populations re-equilibrating with their host melt. Matching the measured compositions requires Fe−Mg diffusivities 5−15 times faster than canonical values, independently confirming the faster melt−solid rates and implying that many published pre-eruptive time scales are correspondingly too long.

Geology
University of Hawaiʻi at Mānoa (US), National Museum of Natural History (US)
Openalex Percentile: Top 15%
Geological and Geochemical Analysis
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