Abstract
The effect of replacing magnesia by alumina on the pressure-dependent structure of amorphous enstatite was investigated by applying in situ high-pressure neutron diffraction with magnesium isotope substitution to glassy (MgO)0.375(Al2O3)0.125(SiO2)0.5. The replacement leads to a factor of 2.4 increase in the rate-of-change of the Mg-O coordination number with pressure, which increases from 4.76(4) at ambient pressure to 6.51(4) at 8.2 GPa, and accompanies a larger probability of magnesium finding bridging oxygen atoms as nearest-neighbors. The Al-O coordination number increases from 4.17(7) to 5.24(8) over the same pressure interval at a rate that increases when the pressure is above ∼3.5 GPa. On recovering the glass to ambient conditions, the Mg-O and Al-O coordination numbers reduce to 5.32(4) and 4.42(6), respectively. The Al-O value is in accordance with the results from solid-state 27Al nuclear magnetic resonance spectroscopy, which show the presence of six-coordinated aluminum species that are absent in the uncompressed material. These findings explain the appearance of distinct pressure-dependent structural transformation regimes in the preparation of permanently densified magnesium aluminosilicate glasses. They also indicate an anomalous minimum in the pressure dependence of the bulk modulus with an onset that suggests a pressure-dependent threshold for transitioning between scratch-resistant and crack-resistant material properties.
Original language | English |
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Article number | 064501 |
Number of pages | 19 |
Journal | The Journal of Chemical Physics |
Volume | 160 |
Issue number | 6 |
Early online date | 9 Feb 2024 |
DOIs | |
Publication status | Published - 14 Feb 2024 |
Data Availability Statement
The datasets created during this research are openly available from the University of Bath Research Data Archive at https://doi.org/10.15125/BATH-01238.97 The diffraction datasets are available in Ref. 98.Funding
We thank Alain Bertoni (Grenoble) for help with the D4c experiments and Lawrence Gammond (Bath) for valuable discussions. P.S.S. also thanks Morten Smedskjaer (Aalborg) and Wilson Crichton (ESRF) for helpful conversations. H.M. was supported by Corning Inc. (Agreement No. CM00002159/SA/01). A.Z. was supported by a Royal Society-EPSRC Dorothy Hodgkin Research Fellowship. P.S.S. and A.Z. acknowledge Corning Inc. for the award of Gordon S. Fulcher Distinguished Scholarships during which this work was conceived. We acknowledge the use of the Inorganic Crystal Structure Database accessed via the Chemical Database Service funded by the Engineering and Physical Sciences Research Council (EPSRC) and hosted by the Royal Society of Chemistry. P.S.S. and A.Z. designed the diffraction project on the glass structure. H.M. prepared the samples. R.E.Y. performed the NMR experiments and analyzed the results. H.M., P.S.S., and H.E.F. performed the neutron diffraction experiments, and H.M. analyzed the results. P.S.S. wrote the paper with input from all co-authors. We thank Alain Bertoni (Grenoble) for help with the D4c experiments and Lawrence Gammond (Bath) for valuable discussions. P.S.S. also thanks Morten Smedskjaer (Aalborg) and Wilson Crichton (ESRF) for helpful conversations. H.M. was supported by Corning Inc. (Agreement No. CM00002159/SA/01). A.Z. was supported by a Royal Society-EPSRC Dorothy Hodgkin Research Fellowship. P.S.S. and A.Z. acknowledge Corning Inc. for the award of Gordon S. Fulcher Distinguished Scholarships during which this work was conceived. We acknowledge the use of the Inorganic Crystal Structure Database accessed via the Chemical Database Service funded by the Engineering and Physical Sciences Research Council (EPSRC) and hosted by the Royal Society of Chemistry. P.S.S. and A.Z. designed the diffraction project on the glass structure. H.M. prepared the samples. R.E.Y. performed the NMR experiments and analyzed the results. H.M., P.S.S., and H.E.F. performed the neutron diffraction experiments, and H.M. analyzed the results. P.S.S. wrote the paper with input from all co-authors.
Funders | Funder number |
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Corning Inc. | CM00002159/SA/01 |
Royal Society-EPSRC | |
Wilson Crichton | |
Engineering and Physical Sciences Research Council | |
European Synchrotron Radiation Facility |
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Data sets for "Pressure dependent structure of amorphous magnesium aluminosilicates: The effect of replacing magnesia by alumina at the enstatite composition"
Salmon, P. (Creator), Zeidler, A. (Creator) & Youngman, R. (Work Package Leader), University of Bath, 25 Jan 2024
DOI: 10.15125/BATH-01238
Dataset