10:45 AM - 12:15 PM
[PCG20-P06] Structure and diffusion dynamics of forsterite and its interstitial water
Keywords:forsterite, water, molecular dynamics (MD) calculation
MD calculations were performed using the MXDORTO program developed by Kawamura [5]. Fundamental orthorhombic cells consisting of 484–3311 H2O and 1176 Mg2SiO4 (forsterite in crystalline or glassy states) were used as the initial structures of forsterite-water systems. The thicknesses of water layer between the forsterite phases were controlled with the number of H2O to be 1–6 nm. The MD code was run with an NTP ensemble for 2.0 ns at 280–470 K. The pressure was kept at 0.1 MPa. The structure and diffusive properties were analyzed using the equilibrated structures. To compare the results, the calculations were performed using a pure water consisting of 360 H2O.
The results showed that the density of water increases as the thickness of the water layer decreases at the thickness of < ~2 nm. The density becomes almost constant when the thickness is larger than ~2 nm. The mean number of hydrogen bonds of the high-density state is larger than that of pure water. Furthermore, it was found that the self-diffusion coefficient of water molecules decreases as the thickness of the water layer decreases. A similar trend was observed for the interstitial water of crystalline forsterite. The results suggest that the effects of the structurization of water in the interface with forsterite glass [6] propagate to the layer.
To investigate the effects of interstitial water on the structure and properties of forsterite phases, the coordination structure and atomic displacement parameter (ADP) as a measure of the amplitude of thermal vibration of Mg atoms were analyzed. The result showed that the ADP value of Mg decreases as the thickness of the water layer decreases even in the internal part of forsterite, although the coordination number of Mg is almost constant. The decrease in ADP of Mg can be related to the decrease in the self-diffusion coefficients of interstitial water. Due to a restriction from the structured water in the interface, the thermal vibrations of the atoms in the forsterite are hindered.
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