JOURNAL ARTICLE

Monte Carlo and Molecular Dynamics Simulation of Uranyl Adsorption on Montmorillonite Clay

Omar F. ZaidanJeffery A. GreathouseRoberto T. Pabalan

Year: 2003 Journal:   Clays and Clay Minerals Vol: 51 (4)Pages: 372-381   Publisher: Cambridge University Press

Abstract

Abstract We performed Monte Carlo and molecular dynamics simulations to investigate the interlayer structure of a uranyl-substituted smectite clay. Our clay model is a dioctahedral montmorillonite with negative charge sites in the octahedral sheet only. We simulated a wide range of interlayer water content (0 mg H 2 O/g clay — 260 mg H 2 O/g clay), but we were particularly interested in the two-layer hydrate that has been the focus of recent X-ray absorption experiments. Our simulation results for the two-layer hydrate of uranyl-montmorillonite yield a water content of 160 mg H 2 O/g clay and a layer spacing of 14.66 Å. Except at extremely low water content, uranyl cations are oriented nearly parallel to the surface normal in an outer-sphere complex. The first coordination shell consists of five water molecules with an average U-O distance of 2.45 Å, in good agreement with experimental data. At low water content, the cations can assume a perpendicular orientation to include surface oxygen atoms in the first coordination shell. Our molecular dynamics results show that UO2(H2O)52+ complexes translate within the clay pore through a jump diffusion process, and that first-shell water molecules are exchangeable and interchangeable.

Keywords:
Montmorillonite Clay minerals Adsorption Molecular dynamics Biogeosciences Uranyl Monte Carlo method Chemistry Materials science Geology Physical chemistry Mineralogy Computational chemistry Uranium Mathematics Organic chemistry Earth science Metallurgy Statistics

Metrics

35
Cited By
1.03
FWCI (Field Weighted Citation Impact)
43
Refs
0.71
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Radioactive element chemistry and processing
Physical Sciences →  Chemistry →  Inorganic Chemistry
Radioactive contamination and transfer
Physical Sciences →  Environmental Science →  Global and Planetary Change
Groundwater flow and contamination studies
Physical Sciences →  Environmental Science →  Environmental Engineering

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