Différences entre les versions de « VBTutorial1 »
Ligne 219 : | Ligne 219 : | ||
# C(Me)<math>{}_3</math>-Cl at equilibrium geometry : | # C(Me)<math>{}_3</math>-Cl at equilibrium geometry : | ||
## Compute a VBSCF wave function using ''frgtyp=atom'' and a $Gus section to specify guess orbitals. The active electron pair will be the C-Cl bond, and all inactive orbitals should be localized either on Cl or on the C(Me3) fragment. Which structures should be kept in further BOVB calculations ? | ## Compute a VBSCF wave function using ''frgtyp=atom'' and a $Gus section to specify guess orbitals. The active electron pair will be the C-Cl bond, and all inactive orbitals should be localized either on Cl or on the C(Me3) fragment. Which structures should be kept in further BOVB calculations ? | ||
+ | ## Redo the VBSCF calculation reading the orbital file obtained at the previous step as guess file, and now requesting a boys localization (keyword : ''boys''). Compare the VBSCF orbitals obtained with and without the ''boys'' keyword (you can as well use the ''moldendat'' utility to display them). | ||
## Compute a L-BOVB wave function. | ## Compute a L-BOVB wave function. | ||
− | ## Compute a D-BOVB wave function, by freezing the active orbitals, and delocalizing all inactive orbitals onto the whole molecule. | + | ## Compute a D-BOVB wave function, by freezing the active orbitals, and delocalizing all inactive orbitals onto the whole molecule (see also : [[General_guidelines_for_BOVB_calculations| >> general guidelines for BOVB calculations]]). |
# Starting from guess orbitals obtained at equilibrium geometry, redo the D-BOVB calculation for the large inter fragment distance. How does the weights of the different structures evolve when the molecule is stretched ? | # Starting from guess orbitals obtained at equilibrium geometry, redo the D-BOVB calculation for the large inter fragment distance. How does the weights of the different structures evolve when the molecule is stretched ? | ||
# Redo the D-BOVB calculations at equilibrium geometry and large distance using VBPCM for water. How does the weights change with solvation effects ? | # Redo the D-BOVB calculations at equilibrium geometry and large distance using VBPCM for water. How does the weights change with solvation effects ? |
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Basics of VB theory and XMVB program
Computer exercises | ||||
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Exercise 2 : Starting up with the H<math>{}_2</math> moleculeTwo Gamess and XMVB input files for the H<math>{}_2</math> molecule are provided in the Exercise folder on the tutorial machines :
There are VBSCF calculations with the 6-31G(d,p) basis set. Just inspect these inputs, run the gamess-xmvb program (using : vbrun h2-atom and : vbrun h2-sao, and analyze the outputs. Then these input files could serve you as templates for the next exercises. Exercise 3 : HF molecule : weights and bond energy
Exercise 4 : F<math>{}_2</math> molecule and charge-shift resonance energy
Exercice 5 : Solvent effect on C(Me)<math>{}_3</math>-Cl weights
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