The electronic configurations of CO and O 2 , on the basis of the molecular orbital model are to be stated. Concept introduction: The electronic configuration for multi-electron diatomic is written using the molecular orbitals, derived from the H 2 + molecular ion. The bond order is calculated by difference between the anti-bonding electrons and the bonding electrons by two. This can be stated as, Bond order = [ ( Electrons in bonding orbitals ) − ( Electrons in anti-bonding orbitals ) ] 2 As the bond order increases, the stability also increases. The bond order is directly proportional to the bond energy and inversely proportional to the bond length. To determine: The electronic configuration of O 2 on the basis of the molecular orbital model. The electronic configuration of CO on the basis of the molecular orbital model. Two points of difference between CO and O 2 .
The electronic configurations of CO and O 2 , on the basis of the molecular orbital model are to be stated. Concept introduction: The electronic configuration for multi-electron diatomic is written using the molecular orbitals, derived from the H 2 + molecular ion. The bond order is calculated by difference between the anti-bonding electrons and the bonding electrons by two. This can be stated as, Bond order = [ ( Electrons in bonding orbitals ) − ( Electrons in anti-bonding orbitals ) ] 2 As the bond order increases, the stability also increases. The bond order is directly proportional to the bond energy and inversely proportional to the bond length. To determine: The electronic configuration of O 2 on the basis of the molecular orbital model. The electronic configuration of CO on the basis of the molecular orbital model. Two points of difference between CO and O 2 .
Solution Summary: The author explains how the electronic configurations of CO and
Interpretation: The electronic configurations of
CO and
O2, on the basis of the molecular orbital model are to be stated.
Concept introduction: The electronic configuration for multi-electron diatomic is written using the molecular orbitals, derived from the
H2+ molecular ion.
The bond order is calculated by difference between the anti-bonding electrons and the bonding electrons by two. This can be stated as,
As the bond order increases, the stability also increases. The bond order is directly proportional to the bond energy and inversely proportional to the bond length.
To determine: The electronic configuration of
O2 on the basis of the molecular orbital model.
The electronic configuration of
CO on the basis of the molecular orbital model. Two points of difference between
CO and
O2.
Question 5: Name the following compound in two ways
using side chain and using prefix amine (Common name
and IUPAC name both)
CH3NH2
CH3CH2NHCH3
CH₂CH₂N(CH3)2
Draw the structure of diethyl methyl amine
Question 6. Write the balanced combustion reaction
for:
a. Hexane
b. Propyne
c. 2-pentene
Question 7: Write the following electrophilic
substitution reactions of benzene:
Hint: Use notes if you get confused
a. Halogenation reaction:
b. Nitration reaction :
c. Sulphonation reaction:
d. Alkylation reaction:
e. Aceylation reaction:
Question 4. Name the following structures
○
CH3-C-N-H
H
CH3CH2-C-N-H
H
CH3CH2-C-N-CH3
H
A. Add Water to below compound which 2-methyl 2-butene (addition Reaction)
H₂C
CH₂
CH,
+ H₂O-> ?
Major product?
Minor product?
B. Add Bromine to the compound which 2-methyl 2-butene (addition Reaction)
CH₂
CH₂
+ Br₂→ ?
Major product and Minor product both are same in this?
C. Add Hydrogen Bromide to the compound which 2-methyl 2-butene (addition
Reaction)
H,C
CH₂
CH₂
+ HBr
Major product?
Minor product?
D. Add Hydrogen to the compound which 2-methyl 2-butene (addition Reaction)
CH₂
CH₂
+ H₂
Major product and Minor product both are same in this?
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Quantum Molecular Orbital Theory (PChem Lecture: LCAO and gerade ungerade orbitals); Author: Prof Melko;https://www.youtube.com/watch?v=l59CGEstSGU;License: Standard YouTube License, CC-BY