Metastable silica high pressure polymorphs as structural proxies of deep Earth silicate melts
[PHYS]Physics [physics]
0301 basic medicine
550
Science
Q
Materialkemi
500
ddc:no
Article
03 medical and health sciences
X-RAY-DIFFRACTION
306
MOLECULAR-DYNAMICS
CHEMISTRY
Materials Chemistry
LIQUID
PHASE-TRANSITIONS
MGSIO3 GLASS
SIO2
info:eu-repo/classification/ddc/500
DOI:
10.1038/s41467-018-07265-z
Publication Date:
2018-11-09T09:56:13Z
AUTHORS (14)
ABSTRACT
AbstractModelling of processes involving deep Earth liquids requires information on their structures and compression mechanisms. However, knowledge of the local structures of silicates and silica (SiO2) melts at deep mantle conditions and of their densification mechanisms is still limited. Here we report the synthesis and characterization of metastable high-pressure silica phases, coesite-IV and coesite-V, using in situ single-crystal X-ray diffraction and ab initio simulations. Their crystal structures are drastically different from any previously considered models, but explain well features of pair-distribution functions of highly densified silica glass and molten basalt at high pressure. Built of four, five-, and six-coordinated silicon, coesite-IV and coesite-V contain SiO6 octahedra, which, at odds with 3rd Pauling’s rule, are connected through common faces. Our results suggest that possible silicate liquids in Earth’s lower mantle may have complex structures making them more compressible than previously supposed.
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