What shape would this molecule have in What bond angles would this molecule have in three dimensions? three dimensions? linear O 109° trigonal planar

Chemistry & Chemical Reactivity
10th Edition
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Chapter9: Bonding And Molecular Structure: Orbital Hybridization And Molecular Orbitals
Section: Chapter Questions
Problem 46GQ: Which of the following molecules or ions are para-magnetic? What is the highest occupied molecular...
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What shape would this molecule have in
What bond angles would this molecule have in
three dimensions?
three dimensions?
linear
O 109°
trigonal planar
Transcribed Image Text:What shape would this molecule have in What bond angles would this molecule have in three dimensions? three dimensions? linear O 109° trigonal planar
Expert Solution
Step 1

Solution:

Here Y is the central atom and surrounded by three X atoms and a lone pair on Y. So the type of molecule is YX3N.

Since lone pair is not visible, molecular geometry is trigonal pyramidal due to the repulsion between lone pair and adjacent X atoms. electron geometry is tetrahedral and expected bond angle is 1090.

So the shape (molecular geometry) of the given molecule is pyramidal. While electron geometry is tetrahedral. Therefore, expected bond angle is 1090.

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