Différences entre les versions de « VBTutorial1 »
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#* the ''frgtyp=sao'' specification, without using the f basis functions in the definition of the fragment orbitals for simplicity ; | #* the ''frgtyp=sao'' specification, without using the f basis functions in the definition of the fragment orbitals for simplicity ; | ||
#* the ''boys'' keyword in the ''$ctrl'' section ; | #* the ''boys'' keyword in the ''$ctrl'' section ; | ||
− | #* specifying a guess read from Gamess RHF Molecular orbitals | + | #* automatic guess (''guess=auto'' option) ; |
+ | # Recompute the same L-VBSCF wave-function, this time specifying a guess read from Gamess RHF Molecular orbitals, through the ''guess=mo'' option in the $ctrl section, and adding an extra ''$gus'' section in the input (see ''hints'' below, and [[file:|XMVB manual]]) ; | ||
# BOVB level : | # BOVB level : | ||
## First, compute a π-D-VBSCF wave function using previous VBSCF orbitals as guess orbitals. To do that, you should allow the π inactive orbitals of fluorine to delocalize onto the two atoms, while keeping all <math>/sigma</math> (active and inactive) orbitals localized (see also : [[General_guidelines_for_BOVB_calculations#High_symmetry_case:| >> see "high symmetry case" in the "general guidelines for BOVB calculations"]]) | ## First, compute a π-D-VBSCF wave function using previous VBSCF orbitals as guess orbitals. To do that, you should allow the π inactive orbitals of fluorine to delocalize onto the two atoms, while keeping all <math>/sigma</math> (active and inactive) orbitals localized (see also : [[General_guidelines_for_BOVB_calculations#High_symmetry_case:| >> see "high symmetry case" in the "general guidelines for BOVB calculations"]]) | ||
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** read the RHF orbitals in Gamess and identify those who could be good guess orbitals for : 1s core of F, 2s lone pair, 2px lone pairs,... active orbitals | ** read the RHF orbitals in Gamess and identify those who could be good guess orbitals for : 1s core of F, 2s lone pair, 2px lone pairs,... active orbitals | ||
** then build the ''$gus'' section in XMVB input accordingly, and start your calculation (don't forget to add again ''vbtyp=xmvb'' in the $control section of Gamess input) | ** then build the ''$gus'' section in XMVB input accordingly, and start your calculation (don't forget to add again ''vbtyp=xmvb'' in the $control section of Gamess input) | ||
+ | |||
+ | Note that using automatic guess works fine in a simple case like this one, using ''guess=mo'' simply accelerate convergence. However, for larger molecule, specifying a good orbital guess through ''guess=mo'' and an extra $gus section will often be useful. | ||
+ | |||
* For the VBCISD calculation on F<sub>2</sub> you should add ''NCOR=2'' in the ''$ctrl'' section, as there is two core orbitals (core of each fluorine) to freeze in the calculation | * For the VBCISD calculation on F<sub>2</sub> you should add ''NCOR=2'' in the ''$ctrl'' section, as there is two core orbitals (core of each fluorine) to freeze in the calculation | ||
* To compute the bond energy at the BOVB level, you can simply use the ROHF energies computed with Gamess for the separate fragments (F atoms here), because the L- and D-BOVB wave functions (like the VBSCF one) dissociate to uncorrelated separate fragments. | * To compute the bond energy at the BOVB level, you can simply use the ROHF energies computed with Gamess for the separate fragments (F atoms here), because the L- and D-BOVB wave functions (like the VBSCF one) dissociate to uncorrelated separate fragments. |
Version du 10 juillet 2012 à 09:22
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Basics of VB theory and XMVB program
Main exercises | ||||
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Exercise 1 : Starting up with the H<math>{}_2</math> moleculeThe Gamess and XMVB input files for the H<math>{}_2</math> molecule are provided in the Exercise folder on the tutorial machines. These are VBSCF calculations with the 6-31G(d,p) basis set, and the fragment specification in terms of symmetry-adapted orbitals (frgtyp=sao). Just inspect these inputs, run the gamess-xmvb program (using : vbrun h2), and analyze the outputs. Then these input files could serve you as templates for the next exercises. Exercise 2 : HF molecule weights
Exercise 3 : F<math>{}_2</math> molecule and bond energy
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