Structural evolution of iron oxides melts at Earth’s outer-core pressures

C Céline Crépisson M Mila Fitzgerald D Domenic Peake P Patrick G. Heighway T Thomas Stevens A Adrien Descamps D David McGonegle A Alexis Amouretti K Karim K. Alaa El-Din M Michal Andrzejewski S Sam Azadi E Erik Brambrink C Carolina Camarda D David A. Chin S Samuele Di Dio Cafiso A Ana Coutinho Dutra H Hauke Höppner K Kohdai Yamamoto P Phani S. Karamched Z Zuzana Konôpková (European XFEL, Holzkoppel 4, 22869 Schenefeld, Germany) M Motoaki Nakatsutsumi N Norimasa Ozaki D Danae N. Polsin J Jan-Patrick Schwinkendorf G Georgiy Shoulga C Cornelius Strohm (Deutsches Elektronen-Synchrotron DESY, Notkestr. 85, 22607 Hamburg, Germany) M Minxue Tang (European XFEL, Holzkoppel 4, 22869 Schenefeld, Germany) H Harry Taylor M Monika Toncian Y Yizhen Wang (State Key Laboratory of Vaccines for Infectious Diseases, Xiang An Biomedicine Laboratory, School of Life Sciences, School of Public Health, Xiamen University) J Jin Yao (School of Management, Shenzhen Polytechnic University) G Gianluca Gregori J Justin S. Wark K Karen Appel M Marion Harmand S Sam M. Vinko

Abstract

Abstract Oxygen and other light elements comprise up to 5 wt% of the Earth’s outer-core, and may significantly influence its physical properties and the operation of the geodynamo. Here we report in situ X-ray diffraction measurements of Fe, Fe + 4.5 FeO (atomic proportion), and Fe 2 O 3 melts at 177-440 GPa, achieved using laser-driven shock compression at an x-ray free-electron laser. The melts exhibit Fe-O coordination numbers between 4.0(0.4) and 4.5(0.4), indicating predominantly four-fold coordination environments. These coordination states are significantly smaller than those of Fe-bearing lower-mantle phases such as bridgmanite and ferropericlase. Shorter Fe-Fe interatomic distances in compressed iron oxide melts drive the denser packing relative to ambient melts, while the structural differences between Fe + 4.5 FeO and Fe 2 O 3 melts under shock indicate that the oxidation state modulates oxygen solubility in liquid Fe. At 177 GPa ( ~ 380 km below the core-mantle boundary) and 3800 K, Fe 2 O 3 melts exhibit higher Fe-O coordination, suggesting that local variations in oxygen content could contribute to the stratification in the uppermost outer-core inferred from seismological and geomagnetic observations.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 10, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (36)

C

Céline Crépisson

M

Mila Fitzgerald

D

Domenic Peake

P

Patrick G. Heighway

T

Thomas Stevens

A

Adrien Descamps

D

David McGonegle

A

Alexis Amouretti

K

Karim K. Alaa El-Din

M

Michal Andrzejewski

S

Sam Azadi

E

Erik Brambrink

C

Carolina Camarda

D

David A. Chin

S

Samuele Di Dio Cafiso

A

Ana Coutinho Dutra

H

Hauke Höppner

K

Kohdai Yamamoto

P

Phani S. Karamched

Z

Zuzana Konôpková

European XFEL, Holzkoppel 4, 22869 Schenefeld, Germany

M

Motoaki Nakatsutsumi

N

Norimasa Ozaki

D

Danae N. Polsin

J

Jan-Patrick Schwinkendorf

G

Georgiy Shoulga

C

Cornelius Strohm

Deutsches Elektronen-Synchrotron DESY, Notkestr. 85, 22607 Hamburg, Germany

M

Minxue Tang

European XFEL, Holzkoppel 4, 22869 Schenefeld, Germany

H

Harry Taylor

M

Monika Toncian

Y

Yizhen Wang

State Key Laboratory of Vaccines for Infectious Diseases, Xiang An Biomedicine Laboratory, School of Life Sciences, School of Public Health, Xiamen University

J

Jin Yao

School of Management, Shenzhen Polytechnic University

G

Gianluca Gregori

J

Justin S. Wark

K

Karen Appel

M

Marion Harmand

S

Sam M. Vinko