Crystal structure of calcium-ferrite type NaAlSiO4up to 45 GPa

Fei Qin*, Ye Wu, Shengchao Xue, Dongzhou Zhang, Xiang Wu, Steven D. Jacobsen

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Alkali-rich aluminous high-pressure phases including calcium-ferrite (CF) type NaAlSiO4 are thought to constitute ∼20% by volume of subducted mid-ocean ridge basalt (MORB) under lower mantle conditions. As a potentially significant host for incompatible elements in the deep mantle, knowledge of the crystal structure and physical properties of CF-type phases is therefore important to understanding the crystal chemistry of alkali storage and recycling in the Earth's mantle. We determined the evolution of the crystal structure of pure CF-NaAlSiO4 and Fe-bearing CF-NaAlSiO4 at pressures up to ∼45 GPa using synchrotron-based, single-crystal X-ray diffraction. Using the high-pressure lattice parameters, we also determined a third-order Birch-Murnaghan equation of state, with V0 = 241.6(1) Å3, KT0 = 220(4) GPa, and K T 0 ′ = 2.6 (3) $K{T 0}{\prime}=2.6(3)$for Fe-free CF, and V0 = 244.2(2) Å3, KT0 = 211(6) GPa, and ′′ K T 0 ′ $K{T 0}{\prime}$= 2.6(3) for Fe-bearing CF. The addition of Fe into CF-NaAlSiO4 resulted in a 10 ± 5% decrease in the stifest direction of linear compressibility along the c-axis, leading to stronger elastic anisotropy compared with the Fe-free CF phase. The NaO8 polyhedra volume is 2.6 times larger and about 60% more compressible than the octahedral (Al,Si)O6 sites, with K 0NaO8 = 127 GPa and K0(Al,Si)O6 ∼ 304 GPa. Raman spectra of the pure CF-type NaAlSiO4 sample shows that the pressure coefficient of the mean vibrational mode, 1.60(7) cm-1/GPa, is slightly higher than 1.36(6) cm-1/GPa obtained for the Fe-bearing CF-NaAlSiO4 sample. The ability of CF-type phases to contain incompatible elements such as Na beyond the stability field of jadeite requires larger and less-compressible NaO8 polyhedra. Detailed high-pressure crystallographic information for the CF phases provides knowledge on how large alkali metals are hosted in alumina framework structures with stability well into the lowermost mantle.

Original languageEnglish (US)
Pages (from-to)2331-2337
Number of pages7
JournalAmerican Mineralogist
Volume108
Issue number12
DOIs
StatePublished - Dec 16 2023

Keywords

  • CF-type NaAlSiO
  • Raman spectroscopy
  • high pressures
  • incompatible Na elements
  • lower mantle
  • single-crystal structure refinements

ASJC Scopus subject areas

  • Geophysics
  • Geochemistry and Petrology

Fingerprint

Dive into the research topics of 'Crystal structure of calcium-ferrite type NaAlSiO4up to 45 GPa'. Together they form a unique fingerprint.

Cite this