Différences entre les versions de « VBTutorial2 »

De Workshops
Aller à la navigation Aller à la recherche
 
(14 versions intermédiaires par 2 utilisateurs non affichées)
Ligne 1 : Ligne 1 :
[[VB_workshop_tutorials_program|<< Return to the program]]
+
[[VB_tutorial|<<< VB tutorials main page]]
 
 
  
  
Ligne 6 : Ligne 5 :
  
 
In all the following exercises, '''<font color=red><math>\pi</math> the system will be taken as active</font>''', and the <math>\sigma</math> system as inactive. In all VB calculations, the <math>\sigma</math> orbitals shall be described by MOs delocalized onto the whole molecule.
 
In all the following exercises, '''<font color=red><math>\pi</math> the system will be taken as active</font>''', and the <math>\sigma</math> system as inactive. In all VB calculations, the <math>\sigma</math> orbitals shall be described by MOs delocalized onto the whole molecule.
 
+
The excersise involves calculation of all the electrons. Yet, in principle the <math>\sigma</math> system could aslo be frozen by using the bfi option. Thus, such inputs/outputs are also given however, to avoid redundency, the results from these inputs are not summarized.
  
 
{| class="collapsible collapsed wikitable"
 
{| class="collapsible collapsed wikitable"
Ligne 54 : Ligne 53 :
 
<br>
 
<br>
  
[[VBFile 2-1 | FILES FOR question1]]
 
<br>
 
  
 
====2.''Understanding the pattern of spin density distributions in the allyl radical as found in EPR spectroscopy''====
 
====2.''Understanding the pattern of spin density distributions in the allyl radical as found in EPR spectroscopy''====
Ligne 92 : Ligne 89 :
  
 
====3. ''Covalent and ionic structures of the allyl radical:'' ====
 
====3. ''Covalent and ionic structures of the allyl radical:'' ====
#From each covalent structure we can get two ionic structures. Additional two ionic structures are obtained from the redundant structure. Therefore overall there are 6 different ionic structures <br>[[File:Allyl_Ionic-N1.png|450px]]                <br> In the two ionic structures (<math> \Phi_{\textrm{7}} </math>,<math> \Phi_{\textrm{8}} </math>) that are based on the redundant structure the charges are farther from each other compared with the other ionic structures and are therefore, expected to be higher in energy. These two structures will therefore not be included in our chosen sub-set of structures.
+
#From each covalent structure we can get two ionic structures. Additional two ionic structures are obtained from the redundant structure. Therefore overall there are 6 different ionic structures <br>[[File:Allyl_Ionic-N2.png|450px]]                <br> In the two ionic structures (<math> \Phi_{\textrm{7}} </math>,<math> \Phi_{\textrm{8}} </math>) that are based on the redundant structure the charges are farther from each other compared with the other ionic structures and are therefore, expected to be higher in energy. These two structures will therefore not be included in our chosen sub-set of structures.
  
 
|}
 
|}
Ligne 119 : Ligne 116 :
 
|-
 
|-
 
|
 
|
 +
 
====''1. Computation of covalent state of allyl radical''====
 
====''1. Computation of covalent state of allyl radical''====
 
# The weights of the two structures, <math> \Phi_1 </math> and <math> \Phi_{\textrm{2}} </math> is identical and equals 0.5 as expected.  
 
# The weights of the two structures, <math> \Phi_1 </math> and <math> \Phi_{\textrm{2}} </math> is identical and equals 0.5 as expected.  
Ligne 196 : Ligne 194 :
  
 
==== ''3. Computation of resonance energies for the Allyl radical'' ====
 
==== ''3. Computation of resonance energies for the Allyl radical'' ====
#The following are the three structures of allyl radical which describe one of its Lewis structures (the structure which involves a bond between atoms a and b and an unpaired electron on atom c):<br>[[File:Allyl_Lewis.png|450px]] <br> <br>
+
#The following are the three structures of allyl radical which describe one of its Lewis structures (the structure which involves a bond between atoms a and b and an unpaired electron on atom c):<br>[[File:Allyl_Lewis1.png|450px]] <br> <br>
 
#The total energy of the VB wave function of this Lewis structure is summarized in the following table: <br> <br>
 
#The total energy of the VB wave function of this Lewis structure is summarized in the following table: <br> <br>
 
{| border="1"  
 
{| border="1"  
Ligne 217 : Ligne 215 :
 
|}  <br> At the BOVB level, the resonance energy (RE) of the allyl radical which is the difference between the total energy of the allyl radical with full set of the structures and the total energy of the Lewis structure only is RE = 22.5 kcal/mol.
 
|}  <br> At the BOVB level, the resonance energy (RE) of the allyl radical which is the difference between the total energy of the allyl radical with full set of the structures and the total energy of the Lewis structure only is RE = 22.5 kcal/mol.
 
|}
 
|}
 +
 +
[[VBFile 2-1 | FILES FOR Exersice1]]
  
 
|}
 
|}
Ligne 245 : Ligne 245 :
 
|-
 
|-
 
|
 
|
#Complete set of the non-redundant VB structures of the ozone are  <br/>[[File:Ozone-full.png|450px]]<br> <math> \Phi_{\textrm{1}}= \frac{1}{\sqrt2}(\vert p_1\overline p_1p_2\overline p_3\vert + \vert p_1\overline p_1p_3\overline p_2\vert)
+
#Complete set of the non-redundant VB structures of the ozone are (the red line represents the <math> \sigma - electrons </math>) <br/>[[File:Ozone-full2.png|450px]]<br> <math> \Phi_{\textrm{1}}= \frac{1}{\sqrt2}(\vert p_1\overline p_1p_2\overline p_3\vert + \vert p_1\overline p_1p_3\overline p_2\vert)
 
</math><br>  <math>  
 
</math><br>  <math>  
 
\Phi_{\textrm{2}}= \frac{1}{\sqrt2}(\vert p_3\overline p_3p_1\overline p_2\vert + \vert p_3\overline p_3p_2\overline p_1\vert)   
 
\Phi_{\textrm{2}}= \frac{1}{\sqrt2}(\vert p_3\overline p_3p_1\overline p_2\vert + \vert p_3\overline p_3p_2\overline p_1\vert)   
Ligne 313 : Ligne 313 :
  
 
|}
 
|}
 
+
[[VBFile 2-2 | FILES FOR Exercise2]]
 
|}
 
|}
  
Ligne 507 : Ligne 507 :
 
* The resonance energy  '''RE''' = 67.9 kcal/mol (VBSCF) which is in good agreement with the experimental value (65 kcal/mol)
 
* The resonance energy  '''RE''' = 67.9 kcal/mol (VBSCF) which is in good agreement with the experimental value (65 kcal/mol)
 
|}
 
|}
 +
 +
[[VBFile 2-3 | FILES FOR Exercise3]]
  
 
== Exercise 4 : The allyl cation ==
 
== Exercise 4 : The allyl cation ==
Ligne 656 : Ligne 658 :
 
|}
 
|}
  
 +
|}
 +
[[VBFile 2-4 | FILES FOR Exercise4]]
 
|}
 
|}
  
|}
+
 
  
  
 
[[General_guidelines_for_BOVB_calculations| >> general guidelines for BOVB calculations]]
 
[[General_guidelines_for_BOVB_calculations| >> general guidelines for BOVB calculations]]

Dernière version du 18 janvier 2013 à 15:56

<<< VB tutorials main page


VB applications on PI systems

In all the following exercises, <math>\pi</math> the system will be taken as active, and the <math>\sigma</math> system as inactive. In all VB calculations, the <math>\sigma</math> orbitals shall be described by MOs delocalized onto the whole molecule. The excersise involves calculation of all the electrons. Yet, in principle the <math>\sigma</math> system could aslo be frozen by using the bfi option. Thus, such inputs/outputs are also given however, to avoid redundency, the results from these inputs are not summarized.




>> general guidelines for BOVB calculations