110,561 research outputs found

    Mott physics in 2p2p electron dioxygenyl magnet : O2_{2}MMF6_{6} (MM=Sb, Pt)

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    We have investigated electronic structures and magnetic properties of O2_{2}MMF6_{6} (MM=Sb, Pt), which are composed of two building blocks of strongly correlated electrons: O2+_{2}^{+} dioxygenyls and MMF6βˆ’_{6}^{-} octahedra, by employing the first-principles electronic structure band method. For O2_{2}SbF6_{6}, as a reference system of O2_{2}PtF6_{6}, we have shown that the Coulomb correlation of O(2pp) electrons drives the Mott insulating state. For O2_{2}PtF6_{6}, we have demonstrated that the Mott insulating state is induced by the combined effects of the Coulomb correlation of O(2pp) and Pt(5dd) electrons and the spin-orbit (SO) interaction of Pt(5dd) states. The role of the SO interaction in forming the Mott insulating state of O2_{2}PtF6_{6} is similar to the case of Sr2_{2}IrO4_{4} that is a prototype of a SO induced Mott system with Jeff=1/2_{eff}=1/2.Comment: 5 pages, 6 figure

    Pressure-induced Phonon Softenings and the Structural and Magnetic Transitions in CrO2_{2}

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    To investigate the pressure-induced structural transitions of chromium dioxide (CrO2_{2}), phonon dispersions and total energy band structures are calculated as a function of pressure. The first structural transition has been confirmed at Pβ‰ˆ\approx 10 GPa from the ground state tetragonal CrO2_{2} (t-CrO2_{2}) of rutile type to orthorhombic CrO2_{2} (o-CrO2_{2}) of CaCl2_{2} type. The half-metallic property is found to be preserved in o-CrO2_{2}. The softening of Raman-active B1g_{1g} phonon mode, which is responsible for this structural transition, is demonstrated. The second structural transition is found to occur for Pβ‰₯\geq 61.1 GPa from ferromagnetic (FM) o-CrO2_{2} to nonmagnetic (NM) monoclinic CrO2_{2} (m-CrO2_{2}) of MoO2_{2} type, which is related to the softening mode at {\bf q} = R(1/2,0,1/2). The third structural transition has been newly identified at P= 88.8 GPa from m-CrO2_{2} to cubic CrO2_{2} of CaF2_{2} type that is a FM insulator

    Evolution of the Protein Interaction Network of Budding Yeast: Role of the Protein Family Compatibility Constraint

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    Understanding of how protein interaction networks (PIN) of living organisms have evolved or are organized can be the first stepping stone in unveiling how life works on a fundamental ground. Here we introduce a hybrid network model composed of the yeast PIN and the protein family interaction network. The essential ingredient of the model includes the protein family identity and its robustness under evolution, as well as the three previously proposed ones: gene duplication, divergence, and mutation. We investigate diverse structural properties of our model with parameter values relevant to yeast, finding that the model successfully reproduces the empirical data.Comment: 5 pages, 5 figures, 1 table. Title changed. Final version published in JKP
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