QUESTION IMAGE
Question
in the lewis structure for the of₂ molecule, the number of lone pairs of electrons around the central oxygen atom is
a 0
b 1
c 3
d 2
Step1: Determine valence electrons
Oxygen has 6 valence electrons (\(6\)), and each fluorine has 7 valence electrons (\(2\times7 = 14\)). Total valence electrons: \(6+14=20\).
Step2: Form bonds
O is the central atom. Each O - F bond uses 2 electrons. Two O - F bonds use \(2\times2 = 4\) electrons. Remaining electrons: \(20 - 4=16\).
Step3: Distribute remaining electrons
These 16 electrons are distributed as lone pairs. Each F atom gets 3 lone pairs (\(2\times3\times2 = 12\) electrons for F). The remaining \(16-12 = 4\) electrons are on O as \(4\div2=2\) lone pairs.
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D. 2