Sovi.AI - AI Math Tutor

Scan to solve math questions

QUESTION IMAGE

determine the formal charge for the left oxygen atom, the central carbo…

Question

determine the formal charge for the left oxygen atom, the central carbon atom and the top oxygen atom in this structure.
o on left:
central c:
o on top:

Explanation:

The formula for formal charge is \( \text{Formal Charge} = \text{Valence Electrons} - \text{Non - bonding Electrons} - \frac{1}{2}\text{Bonding Electrons} \)

Step 1: Determine formal charge of left O

  • Valence electrons of O: \( 6 \)
  • Non - bonding electrons: The left O has \( 6 \) non - bonding electrons (from the Lewis structure: 3 lone pairs, \( 3\times2 = 6 \))
  • Bonding electrons: It is single - bonded to C, so bonding electrons \( = 2 \)
  • Formal charge \(=6 - 6-\frac{2}{2}=6 - 6 - 1=- 1\)

Step 2: Determine formal charge of central C

  • Valence electrons of C: \( 4 \)
  • Non - bonding electrons: C has \( 0 \) non - bonding electrons (no lone pairs)
  • Bonding electrons: C is bonded to two O atoms (one single bond and one double bond) and one O atom (single bond). Total bonding electrons: \( 2 + 4+2=8 \) (single bond has 2 electrons, double bond has 4 electrons)
  • Formal charge \(=4 - 0-\frac{8}{2}=4 - 0 - 4 = 0\)

Step 3: Determine formal charge of top O

  • Valence electrons of O: \( 6 \)
  • Non - bonding electrons: The top O has \( 6 \) non - bonding electrons (3 lone pairs)
  • Bonding electrons: It is single - bonded to C, so bonding electrons \( = 2 \)
  • Formal charge \(=6 - 6-\frac{2}{2}=6 - 6 - 1=-1\)

Answer:

O on left: \(-1\)
central C: \(0\)
O on top: \(-1\)