▎ 摘 要
The adsorption of gas molecules on P-doped graphene (PG) was theoretically studied using density-functional theory in order to find the possibility of modulating electronic and magnetic ordering of graphene. H-2, H2O, CO2, CO, N-2 and NH3 molecules are physisorbed, while NO, NO2, SO2 and O-2 molecules are strongly chemisorbed on PG through the formation of P-X (X = O, N, S) bonds. P dopant introduces global spin polarization into graphene with order of 1.05 mu(B). Chemisorption of NO2 and SO2 makes the spin polarization and projected density of states (PDOS) of molecules localized. NO also induces a partly localized spin state and O-2 an unpolarized system. Meanwhile, the systems of NO2 and O-2 on PG are metallic, while NO and SO2 on PG are half-metallic. Therefore, the properties of PG are strongly dependent on the types of molecules adsorbed, and the method of combining foreign atom doping followed by exposure to air is effective for the engineering of graphene.