Molecular dynamics simulation of interaction between supercritical CO(2) fluid and modified silica surfaces

作者:Qin Yan; Yang Xiaoning*; Zhu Yongfang; Ping Jialun
来源:Journal of Physical Chemistry C, 2008, 112(33): 12815-12824.
DOI:10.1021/jp711964e

摘要

The structural and dynamical properties of the supercritical CO(2) fluid confined in the slit nanopores with the hydroxylated and silylated amorphous silica surfaces have been studied using molecular dynamics (MD) simulation. The amorphous bulk silica was obtained by a melt-quench MD simulation technique and the modified silica surfaces were artificially created by the attachment of hydrogen (-OH model) and trimethysilane (-Si(CH(3))(3) model) to the nonbridging oxygen atoms on the silica surfaces. The VdW interaction potential between the CO(2) molecule and the hydroxylated silica surface was determined based on the ab initio quantum mechanics (QM) computation. The adsorption potential distributions Of CO(2) on the two modified silica surfaces were examined in order to evaluate the different surface interaction characteristics. The density profiles, the radial distribution functions, as well as the interfacial dynamics properties (self-diffusion coefficients and residence time) for the confined supercritical CO(2) fluid have been simulated. It is demonstrated that the hydroxylated silica surface gives a stronger confining effect on the supercritical CO(2) fluid as compared with the silylated surface. The remarkable impact on the supercritical CO(2) fluid from the hydroxylated silica surface can be attributed to the H-bonding interaction between CO(2) molecules and surface silanol groups. The analysis of the vibrational density of states of the confined supercritical CO(2) fluid reveals the phenomena of the spectral shifts and the Fermi resonance in compaison with the bands in unconfined supercritical CO(2). This spectrum behavior is associated with the enhanced interaction from the functional groups on silica surfaces.