CICECO - Aveiro Institute of Materials, Department of Materials and Ceramic Engineering, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
Phys Chem Chem Phys. 2018 Jun 20;20(24):16686-16694. doi: 10.1039/c8cp02589d.
Periodic mesoporous organosilicas (PMOs) were suggested as potential adsorbents for CO2/CH4 separation because of their large affinities towards CO2 and low interaction with CH4. Herewith, we present a comprehensive computational study on the binding properties of flue gas species with the pore walls of periodic mesoporous phenylene-silica (Ph-PMO) for understanding the possible impact of other gaseous species in the CO2/CH4 separation. The calculations considered three exchange-correlation functionals (PBE, PBE-D2 and M06-2X) based on the density functional theory and the walls of the periodic mesoporous phenylene-silica were modelled within the cluster model approach. The components of the flue gas considered were the diatomic CO, H2, N2, O2 and NO molecules, the triatomic CO2, H2O, H2S and SO2 species, the tetratomic SO3 and NH3 gases and the pentatomic CH4 molecule. The calculated data demonstrate that the presence of H2O, SO2, NH3, H2S and SO3 is a significant threat to CO2 capture by Ph-PMO and suggest that the Ph-PMO material would present high selectivity for CO2 over CH4, CO, H2 or N2 adsorption. The adsorption behaviour of flue gas components in Ph-PMO can be directly related to the experimental proton affinities, basicities or even the polarizabilities of the gaseous molecules.
周期性介孔有机硅(PMO)因其对 CO2 的高亲和力和与 CH4 的低相互作用而被提议作为 CO2/CH4 分离的潜在吸附剂。在此,我们进行了一项全面的计算研究,以了解其他气态物质对 CO2/CH4 分离的可能影响,研究烟道气物质与周期性介孔联苯硅(Ph-PMO)孔壁的结合特性。该计算考虑了三种基于密度泛函理论的交换相关泛函(PBE、PBE-D2 和 M06-2X),并采用团簇模型方法对周期性介孔联苯硅的壁进行建模。考虑的烟道气成分包括双原子 CO、H2、N2、O2 和 NO 分子、三原子 CO2、H2O、H2S 和 SO2 物种、四原子 SO3 和 NH3 气体以及五原子 CH4 分子。计算数据表明,H2O、SO2、NH3、H2S 和 SO3 的存在对 Ph-PMO 捕获 CO2 构成了重大威胁,并表明 Ph-PMO 材料对 CO2 与 CH4、CO、H2 或 N2 吸附具有高选择性。烟道气成分在 Ph-PMO 中的吸附行为可以直接与气态分子的实验质子亲和力、碱性甚至极化率相关联。