• Media type: Book
  • Title: Hartree-Fock-Slater method for materials science : the DV-X [Alpha] method for design and characterization of materials ; with 33 tables
  • Contributor: Adachi, Hirohiko [Hrsg.]
  • imprint: Berlin; Heidelberg [u.a.]: Springer, 2006
  • Published in: Springer series in materials science ; 84
  • Extent: XVI, 240 S.; Ill., graph. Darst
  • Language: English
  • ISBN: 3540245081; 9783540245087
  • Publisher, production or purchase order numbers: Sonstige Nummer: 11383833
  • RVK notation: ZM 3000 : Allgemeine Darstellungen zur Werkstoffwissenschaft
  • Keywords: Werkstoff > Elektronenstruktur > Hartree-Fock-Slater-Methode
    Werkstoff > Elektronenstruktur > Hartree-Fock-Slater-Methode
  • Origination:
  • Footnote: Literaturangaben
  • Description: Molecular-orbital calculations for materials design such as alloys, ceramics, and coordination compounds are now possible for experimentalists. Molecuar-orbital calculations for the interpretation of chemical effect of spectra are also possible for experimentalists. The most suitable molecular-orbital calculation method for these purpose is the DV-Xa method, which is robust in such a way that the calculation converges to a result even if the structure of the molecule or solid is impossible in the pressure and temperature ranges on earth. This book specially addresses the methods to design novel materials and to predict the spectrallline shape of unknown materials using the DV-Xa molecular-orbital method, but is also useful for those who want to calculate electronic structures of materials using any kinds of method. TOC:1.- DV-X-alpha method and molecular structure.- 2. Alloy design based on DV-X-alpha cluster method.- 3. Chemical bonding around lattice imperfections in 3D-transition metal compounds.- 4. Application of the DV-X-alpha calculation to investigation of oxide ceramics.- 5. Magnetic properties.- 6. Optical materials.- 7. Heavy elements.- 8. Rediative transition.- 9. Response to the creation of a core hole in transition metal compounds.- 10. Determining electronic structure from Auger spectra in cluster approximation

copies

(0)
  • Status: Loanable