A systematic ab initio study of the equilibrium geometry and vibrational wave numbers of bismuthine

The equilibrium structure and the harmonic and anharmonic force fields of BiH(3) are determined by high-level ab initio calculations using a variety of correlation treatments, basis sets, and pseudopotentials, partly in combination with core polarization potentials. Spin-orbit effects are included b...

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Published inThe Journal of chemical physics Vol. 120; no. 22; p. 10404
Main Authors Breidung, Jürgen, Thiel, Walter, Figgen, Detlev, Stoll, Hermann
Format Journal Article
LanguageEnglish
Published United States 08.06.2004
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Abstract The equilibrium structure and the harmonic and anharmonic force fields of BiH(3) are determined by high-level ab initio calculations using a variety of correlation treatments, basis sets, and pseudopotentials, partly in combination with core polarization potentials. Spin-orbit effects are included by a configuration interaction treatment. This systematic study serves to establish a reliable computational protocol for such calculations and, in particular, to minimize basis set superposition errors through an improved new basis set and/or counterpoise corrections. Using the recommended procedures, the best ab initio results for the equilibrium geometry and the fundamental vibrational wave numbers are in good agreement with the available experimental data, which further supports the recent spectroscopic identification of BiH(3). The ground-state total atomization energy of BiH(3) is predicted to be 153.1 kcal/mol.
AbstractList The equilibrium structure and the harmonic and anharmonic force fields of BiH(3) are determined by high-level ab initio calculations using a variety of correlation treatments, basis sets, and pseudopotentials, partly in combination with core polarization potentials. Spin-orbit effects are included by a configuration interaction treatment. This systematic study serves to establish a reliable computational protocol for such calculations and, in particular, to minimize basis set superposition errors through an improved new basis set and/or counterpoise corrections. Using the recommended procedures, the best ab initio results for the equilibrium geometry and the fundamental vibrational wave numbers are in good agreement with the available experimental data, which further supports the recent spectroscopic identification of BiH(3). The ground-state total atomization energy of BiH(3) is predicted to be 153.1 kcal/mol.
Author Figgen, Detlev
Breidung, Jürgen
Thiel, Walter
Stoll, Hermann
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CitedBy_id crossref_primary_10_1080_00268970512331327425
crossref_primary_10_1007_s00214_005_0687_3
crossref_primary_10_1021_om400730r
crossref_primary_10_1063_1_2047572
crossref_primary_10_1016_j_chemphys_2004_10_005
crossref_primary_10_1002_wcms_94
crossref_primary_10_1016_j_molstruc_2005_06_028
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Snippet The equilibrium structure and the harmonic and anharmonic force fields of BiH(3) are determined by high-level ab initio calculations using a variety of...
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Title A systematic ab initio study of the equilibrium geometry and vibrational wave numbers of bismuthine
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