Vis enkel innførsel

dc.contributor.advisorÅstrand, Per-Olofnb_NO
dc.contributor.advisorRuud, Kennethnb_NO
dc.contributor.advisorRingholm, Magnusnb_NO
dc.contributor.authorOfstad, Benedictenb_NO
dc.date.accessioned2014-12-19T13:22:31Z
dc.date.available2014-12-19T13:22:31Z
dc.date.created2014-08-20nb_NO
dc.date.issued2014nb_NO
dc.identifier739364nb_NO
dc.identifierntnudaim:10050nb_NO
dc.identifier.urihttp://hdl.handle.net/11250/248025
dc.description.abstractZero-point vibrational corrections are carried out with analytical geometry and property derivatives at DFT level. This correction is obtained using a variation-perturbation approach, and is carried out around a variationally determined expansion point, denoted the effective geometry, leading to the inclusion of the anharmonicity of the potential. The corrections up to the second perturbation order are evaluated for the first time. The effective geometry, intermolecular frequencies, and intramolecular frequencies of the (H2O)2 dimer and the HOH-D2O dimer are calculated using the newly implemented analytical cubic force field at DFT level. The perturbation corrections implemented are evaluated for the dipole moment and polarizability of H2O, D2O, NH3, and CH4. Employing DFT, analytical geometry derivatives and property derivatives have been successful. The extra perturbation correction has been deemed significant for both the dipole moment and polarizability.nb_NO
dc.languageengnb_NO
dc.publisherInstitutt for kjeminb_NO
dc.titleVibrational motion in moleculesnb_NO
dc.typeMaster thesisnb_NO
dc.source.pagenumber99nb_NO
dc.contributor.departmentNorges teknisk-naturvitenskapelige universitet, Fakultet for naturvitenskap og teknologi, Institutt for kjeminb_NO


Tilhørende fil(er)

Thumbnail
Thumbnail

Denne innførselen finnes i følgende samling(er)

Vis enkel innførsel