4.5 Article

Molecular Modeling of the Dissociation of Methane Hydrate in Contact with a Silica Surface

期刊

JOURNAL OF PHYSICAL CHEMISTRY B
卷 116, 期 10, 页码 3188-3197

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jp2086544

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  1. Natural Resources Canada (NRCan) under the program Gas Hydrates as a Canadian Energy Alternative
  2. Natural Sciences and Engineering Research Council of Canada

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We use constant energy, constant volume (NVE) molecular dynamics simulations to study the dissociation of the fully occupied structure I methane hydrate in a confined geometry between two hydroxylated silica surfaces between 36 and 41 angstrom apart, at initial temperatures of 283, 293, and 303 K. Simulations of the two-phase hydrate/water system are performed in the presence of silica, with and without a 3 angstrom thick buffering water layer between the hydrate phase and silica surfaces. Faster decomposition is observed in the presence of silica, where the hydrate phase is prone to decomposition from four surfaces, as compared to only two sides in the case of the hydrate/water simulations. The existence of the water layer between the hydrate phase and the silica surface stabilizes the hydrate phase relative to the case where the hydrate is in direct contact with silica. Hydrates bound between the silica surfaces dissociate layer-by-layer in a shrinking core manner with a curved decomposition front which extends over a 5-8 angstrom thickness. Labeling water molecules shows that there is exchange of water molecules between the surrounding liquid and intact cages in the methane hydrate phase. In all cases, decomposition of the methane hydrate phase led to the formation of methane nanobubbles in the liquid water phase.

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