I. Onal et S. Senkan, QUANTUM-CHEMICAL STUDY OF THE CATALYTIC OXIDATIVE COUPLING OF METHANE, Industrial & engineering chemistry research, 36(10), 1997, pp. 4028-4032
Oxidative coupling of methane reaction pathways on MgO and lithium-mod
ified MgO were theoretically studied using the semiempirical MNDO-PM3
molecular orbital method. The surface of the MgO catalyst was modeled
by a Mg9O9 molecular cluster containing structural defects such as edg
es and corners. Lithium-promoted magnesia was simulated by isomorphic
substitution of Mg2+ by Li+; the excess negative charge of the cluster
was compensated by a proton connected to a neighboring O2- site. Hete
rolytic adsorption of methane was found to be directly related to the
coordination number of both the lattice oxygen and the metal sites. En
ergetically the most favorable site pair was Mg-3c-O-3c with a neighbo
ring Li-4c site present. Various sequential oxygen and methane adsorpt
ion pathways were explored resulting in CH3OH formation with lower ene
rgy barriers for the Li-modified MgO cluster as compared to unmodified
MgO.