Différences entre les versions de « VBTutorial1 »
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* To compute the bond energy at the VBCISD level, you should however compute the separate fragments at this level of theory. | * To compute the bond energy at the VBCISD level, you should however compute the separate fragments at this level of theory. | ||
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+ | <big>[[General_guidelines_for_BOVB_calculations| >> general guidelines for BOVB calculations]]</big> | ||
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== Exercise 3 : F<math>{}_2</math> molecule and charge-shift resonance energy == | == Exercise 3 : F<math>{}_2</math> molecule and charge-shift resonance energy == | ||
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## Compute a purely covalent wave function for F<math>{}_2</math> at the D-BOVB level. | ## Compute a purely covalent wave function for F<math>{}_2</math> at the D-BOVB level. | ||
## Deduce the RE_<sub>CS</sub> at the VBSCF, L-BOVB and D-BOVB. Compare it with the experimental bond energy : ~40 kcal/mol). | ## Deduce the RE_<sub>CS</sub> at the VBSCF, L-BOVB and D-BOVB. Compare it with the experimental bond energy : ~40 kcal/mol). | ||
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Version du 3 juillet 2012 à 19:13
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Basics of VB theory and XMVB program
Computer exercises | ||||||
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Exercise 1 : 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 2 : HF molecule : weights and bond energy
Exercise 3 : F<math>{}_2</math> molecule and charge-shift resonance energy
Exercice 4 (optional) : Solvent effect on C(Me)<math>{}_3</math>-Cl weights
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