QUESTION IMAGE
Question
part a - lewis structures, resonance & formal charges
- draw the lewis structure for \\(\text{so}_2\\).
a. provide all valid resonance structures.
b. assign formal charges.
c. use vsepr to predict the molecular shape.
- draw the lewis structure of \\(\text{no}_2^-\\).
a. show resonance structures.
b. determine the formal charge on each atom.
c. predict the molecular geometry using vsepr.
Calculate total valence electrons
For Question 1 (\(\text{SO}_2\)):
Using the Chalcogens knowledge point, both sulfur (\(\text{S}\)) and oxygen (\(\text{O}\)) have 6 valence electrons.
For Question 2 (\(\text{NO}_2^-\)):
Nitrogen (\(\text{N}\)) has 5 valence electrons, oxygen (\(\text{O}\)) has 6, and the negative charge adds 1.
Determine Lewis and resonance structures
For \(\text{SO}_2\):
Central \(\text{S}\) forms one single bond and one double bond to satisfy octets with 18 electrons.
Resonance structures:
For \(\text{NO}_2^-\):
Central \(\text{N}\) forms one single bond and one double bond.
Resonance structures:
Calculate formal charges
Formal charge formula:
For \(\text{SO}_2\) (left resonance structure):
- Double-bonded \(\text{O}\): \(6 - 4 - 2 = 0\)
- Central \(\text{S}\): \(6 - 2 - 3 = +1\)
- Single-bonded \(\text{O}\): \(6 - 6 - 1 = -1\)
For \(\text{NO}_2^-\) (left resonance structure):
- Double-bonded \(\text{O}\): \(6 - 4 - 2 = 0\)
- Central \(\text{N}\): \(5 - 2 - 3 = 0\)
- Single-bonded \(\text{O}\): \(6 - 6 - 1 = -1\)
Predict molecular geometry using VSEPR
For \(\text{SO}_2\):
- Steric number = 3 (2 bonding groups + 1 lone pair on \(\text{S}\)).
- Electron-pair geometry: Trigonal planar.
- Molecular shape: Bent (angle \(< 120^\circ\)).
For \(\text{NO}_2^-\):
- Steric number = 3 (2 bonding groups + 1 lone pair on \(\text{N}\)).
- Electron-pair geometry: Trigonal planar.
- Molecular geometry: Bent (angle \(< 120^\circ\)).
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Question 1
a. Resonance Structures for \(\text{SO}_2\)
The two major resonance structures are:
b. Formal Charges
For the structure \(\text{O}_{(1)}=\text{S}-\text{O}_{(2)}\):
- Double-bonded oxygen (\(\text{O}_{(1)}\)): \(0\)
- Central sulfur (\(\text{S}\)): \(+1\)
- Single-bonded oxygen (\(\text{O}_{(2)}\)): \(-1\)
c. VSEPR Molecular Shape
- Electron-pair Geometry: Trigonal planar
- Molecular Shape: Bent (bond angle \(\approx 119^\circ\))
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Question 2
a. Resonance Structures for \(\text{NO}_2^-\)
The two major resonance structures are:
b. Formal Charges
For the structure \([\text{O}_{(1)}=\text{N}-\text{O}_{(2)}]^-\):
- Double-bonded oxygen (\(\text{O}_{(1)}\)): \(0\)
- Central nitrogen (\(\text{N}\)): \(0\)
- Single-bonded oxygen (\(\text{O}_{(2)}\)): \(-1\)
c. VSEPR Molecular Geometry
- Electron-pair Geometry: Trigonal planar
- Molecular Geometry: Bent (bond angle \(\approx 115^\circ\))