Calcite surface structure and reactivity: molecular dynamics simulations and macroscopic surface modelling of the calcite-water interface
Publication date
2012
Authors
Wolthers, M.
Di Tommaso, D.
Du, Z.
de Leeuw, N.H.
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Supervisors
Document Type
Article
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(c) UU Universiteit Utrecht, 2012
Abstract
Calcite–water interactions are important not only in carbon sequestration and the global carbon
cycle, but also in contaminant behaviour in calcite-bearing host rock and in many industrial
applications. Here we quantify the effect of variations in surface structure on calcite surface
reactivity. Firstly, we employ classical Molecular Dynamics simulations of calcite surfaces
containing an etch pit and a growth terrace, to show that the local environment in water around
structurally different surface sites is distinct. In addition to observing the expected formation of
more calcium–water interactions and hydrogen-bonds at lower-coordinated sites, we also observed
subtle differences in hydrogen bonding around acute versus obtuse edges and corners. We
subsequently used this information to refine the protonation constants for the calcite surface sites,
according to the Charge Distribution MUltiSite Ion Complexation (CD-MUSIC) approach. The
subtle differences in hydrogen bonding translate into markedly different charging behaviour versus
pH, in particular for acute versus obtuse corner sites. The results show quantitatively that calcite
surface reactivity is directly related to surface topography. The information obtained in this study
is not only crucial for the improvement of existing macroscopic surface models of the reactivity of
calcite towards contaminants, but also improves our atomic-level understanding of mineral–water
interactions.