Articles you may be interested inBulk and surface half-metallicity: Metastable zinc-blende TiSb J. Appl. Phys. 112, 023712 (2012); 10.1063/1.4739744 First-principles study on the half-metallicity of full-Heusler alloy Co2VGa (111) surface J. Appl. Phys. 111, 093730 (2012); 10.1063/1.4716183 First-principles prediction of half-metallic ferromagnetism in Cu-doped ZnS J. Appl. Phys. 107, 043913 (2010); 10.1063/1.3309771 Half-metallicity at ferromagnetic∕antiferromagnetic interfaces in zincblende transition-metal chalcogenides: A fullpotential linearized augmented plane-wave study within LDA + U J. Appl. Phys. 103, 07C901 (2008); 10.1063/1.2828521First-principles study on half-metallicity at surface and interface of zinc-blende Cr S ∕ Ga As ( 001 ) Recent studies by Gao et al. ͓Phys. Rev. B 75, 174442 ͑2007͔͒ indicate zinc-blende CaC, SrC, and BaC exhibit robust sp half-metallic ferromagnetism with Curie temperatures higher than room temperature. Here we further investigate the surface electronic and magnetic properties of CaC by using the first-principles full-potential linearized augmented plane-wave method. The ͑001͒ surfaces terminated with Ca and C, respectively, and the ͑110͒ surface terminated with both Ca and C are considered. We discuss the surface stabilities from the calculated relaxed surface energies. Electronic structure calculations indicate that the half-metallicity is destroyed for both the Ca-and C-terminated ͑001͒ surfaces; however, the ͑110͒ surface preserves the half-metallic characteristic of the bulk CaC. We further reveal that the atomic magnetic moments of the ͑001͒ surfaces are greatly different from the bulk values, but the difference of atomic magnetic moments between the ͑110͒ surface and the bulk CaC is very small.