2008 Annual Meeting
(63g) Characterization of the Adsorption of CO2 In Metal-Organic Framework and Zeolitic-Imidazolate Framework Materials by Density Functional Theory Calculations
Authors
To date there has significantly little research focus in the literature to apply quantum-mechanics based theoretical calculations and models to quantify the energy-structure dependence in the bonding of CO2 with these materials. In this work we present fully-periodic DFT calculations performed to quantitatively characterize and contrast the bonding of CO2 in the materials CuBTC, ZIF-68, ZIF-69, and ZIF-70. We began by calculating the fully relaxed bulk crystal structure of these materials based on the proposed structures from experimental crystallography. In most cases, minor expansions of the lattice constant, on the order of 0.5-1.0% are observed, accompanied by minor (measured by RMS analysis) atomic relaxations away from the crystallographic positions. We have also examined the effects induced on the crystal structure by defect/vacancy formation in the ideal material. We then performed calculations to examine the nature of CO2 bonding sites and bonding energy in these materials. We present a comparison of the results of these calculations to help determine the relationships between CO2 bonding in these materials associated with material purity, structure, and composition.