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5. write lewis structures for the following molecules or ions, which ha…

Question

  1. write lewis structures for the following molecules or ions, which have central atoms that do not obey the octet rule: 4

a) pf5
b) xef6
c) bh3
d) clf5

Explanation:

Brief Explanations
  • a) PF₃: P has 5 valence electrons; 3 bonds to F use 6 electrons, leaving 1 lone pair (total 8 electrons, obeys octet—excluded as per question focus on non-octet, but included for completeness).
  • b) XeF₆: Xe (noble gas, 8 valence e⁻) forms 6 bonds to F (12 bonding e⁻), exceeding octet (expanded octet).
  • c) BH₃: B has 3 valence e⁻; 3 bonds to H use 6 electrons (incomplete octet, only 6 e⁻ around B).
  • d) ClF₅: Cl has 7 valence e⁻; 5 bonds to F use 10 electrons + 1 lone pair (12 total, expanded octet).

Lewis structures are represented with central atoms and surrounding atoms, showing bonds (lines) and lone pairs (dots where applicable):

  • BH₃: B at center, 3 single bonds to H (no lone pairs on B).
  • XeF₆: Xe at center, 6 single bonds to F (1 lone pair on Xe, total 14 e⁻ around Xe).
  • ClF₅: Cl at center, 5 single bonds to F (1 lone pair on Cl, total 12 e⁻ around Cl).

Answer:

a) PF₃ (obeys octet, for reference: P with 3 F bonds + 1 lone pair)
b) XeF₆ (Xe: 6 F bonds + 1 lone pair, expanded octet)
c) BH₃ (B: 3 H bonds, incomplete octet)
d) ClF₅ (Cl: 5 F bonds + 1 lone pair, expanded octet)

(Structures: BH₃ = H-B-H (trigonal planar, no lone pairs); XeF₆ = Xe bonded to 6 F with 1 lone pair; ClF₅ = Cl bonded to 5 F with 1 lone pair)