Mechanism and kinetics of sodium diffusion in Na-feldspar from neural network based atomistic simulations

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Gorfer, Alexander, Abart, Rainer, Dellago, Christoph
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913368438210560
author Gorfer, Alexander
Abart, Rainer
Dellago, Christoph
author_facet Gorfer, Alexander
Abart, Rainer
Dellago, Christoph
contents Alkali diffusion is a first-order control for microstructure and compositional evolution of feldspar during cooling from high temperatures of primary magmatic or metamorphic crystallization, and knowledge of the respective diffusion coefficients is crucial for reconstructing thermal histories. Our understanding of alkali diffusion in feldspar is, however, hindered by an insufficient grasp of the underlying diffusion mechanisms. We performed molecular dynamics simulations of sodium feldspar (Albite) containing different point defects using a recently developed neural network potential. A high degree of agreement between the sodium self-diffusion coefficients obtained from model simulations and those determined experimentally in earlier studies motivated a detailed investigation into the interstitial and vacancy mechanisms, corresponding jump rates, correlation factors and anisotropy. We identified a dumbbell shaped double occupancy of an alkali site as an important point defect and a correlation effect originating from the orientation of the dumbbell as a possible cause for the $\perp\!\!(001) > \, \perp\!\!(010)$ diffusion anisotropy, which has been reported in a slew of feldspar cation diffusion experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2405_19008
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Mechanism and kinetics of sodium diffusion in Na-feldspar from neural network based atomistic simulations
Gorfer, Alexander
Abart, Rainer
Dellago, Christoph
Materials Science
Alkali diffusion is a first-order control for microstructure and compositional evolution of feldspar during cooling from high temperatures of primary magmatic or metamorphic crystallization, and knowledge of the respective diffusion coefficients is crucial for reconstructing thermal histories. Our understanding of alkali diffusion in feldspar is, however, hindered by an insufficient grasp of the underlying diffusion mechanisms. We performed molecular dynamics simulations of sodium feldspar (Albite) containing different point defects using a recently developed neural network potential. A high degree of agreement between the sodium self-diffusion coefficients obtained from model simulations and those determined experimentally in earlier studies motivated a detailed investigation into the interstitial and vacancy mechanisms, corresponding jump rates, correlation factors and anisotropy. We identified a dumbbell shaped double occupancy of an alkali site as an important point defect and a correlation effect originating from the orientation of the dumbbell as a possible cause for the $\perp\!\!(001) > \, \perp\!\!(010)$ diffusion anisotropy, which has been reported in a slew of feldspar cation diffusion experiments.
title Mechanism and kinetics of sodium diffusion in Na-feldspar from neural network based atomistic simulations
topic Materials Science
url https://arxiv.org/abs/2405.19008