Molecular Dynamics Simulation on Structure, Hydrogen-Bond and Hydration Properties of Diflunisal Intercalated Layered Double Hydroxides

2009 
The supramolecular structure of diflunisal intercalated layered double hydroxides (DIF/LDHs) was modeled by molecular dynamics (MD) methods. Hydrogen bonding, hydration and swelling properties of DIF/LDHs were investigated. The interlayer spacing d(c) was found to be constant (ca 1.80 nm) when N(w)(the ratio of the numbers of water molecule to DIF) = 4 and this increase follows the linear equation d(c) = 1.2611 N(w) + 13.63. The hydration energy gradually increases as the water content increases. LDHs/DIF hydrates when N(w) = 24 the hydration of LDHs/DIF does not occur because Delta U(H)>-41.84 kJ.mol(-1). Swelling of LDHs/DIF is thus limited in an aqueous environment. The interlayer of DIF/LDHs contains a complex hydrogen bonding network. The hydration of DIF/LDHs occurs as follows: water molecules initially form hydrogen bond with layers and anions. While the anions gradually reach a saturation state and water molecules continue to form hydrogen bonds with the hydroxyls of the layers. The L-W type hydrogen bond gradually substitutes the L-A type hydrogen bond and the anions move to the center of an interlayer and then separate with the layers. Last, a well-ordered structural water layer is formed on the surface hydroxyls of DIF/LDHs.
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