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Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
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Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
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Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary

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Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary
Journal Article

Melting and defect transitions in FeO up to pressures of Earth’s core-mantle boundary

2023
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Overview
The high-pressure melting curve of FeO controls key aspects of Earth’s deep interior and the evolution of rocky planets more broadly. However, existing melting studies on wüstite were conducted across a limited pressure range and exhibit substantial disagreement. Here we use an in-situ dual-technique approach that combines a suite of >1000 x-ray diffraction and synchrotron Mössbauer measurements to report the melting curve for Fe 1- x O wüstite to pressures of Earth’s lowermost mantle. We further observe features in the data suggesting an order-disorder transition in the iron defect structure several hundred kelvin below melting. This solid-solid transition, suggested by decades of ambient pressure research, is detected across the full pressure range of the study (30 to 140 GPa). At 136 GPa, our results constrain a relatively high melting temperature of 4140 ± 110 K, which falls above recent temperature estimates for Earth’s present-day core-mantle boundary and supports the viability of solid FeO-rich structures at the roots of mantle plumes. The coincidence of the defect order-disorder transition with pressure-temperature conditions of Earth’s mantle base raises broad questions about its possible influence on key physical properties of the region, including rheology and conductivity. Multi-technique synchrotron measurements support the viability of solid FeO-rich structures at Earth’s mantle base. An order-disorder transition identified in the iron defect structure of FeO may lead to unique physical properties in the region.