Use valence bond theory to describe the hybridized bonding in the following molecule. (i) What is the shape of this molecule? (ii) What is the hybridization of the central atom? (iii) Indicate which orbitals are used to form the following bonds: a) Br-CI b) Br-O (o-bond) c) Br-O (TT-bond) :Br (iv) Indicate which orbital contain the non-bonding electrons on the central atom. CI (v) Is this molecule hypervalent or hypovalent? CI

Chemistry: Principles and Practice
3rd Edition
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Chapter10: Molecular Structure And Bonding Theories
Section: Chapter Questions
Problem 10.87QE
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Use valence bond theory to describe the hybridized bonding in the following molecule.
(i) What is the shape of this molecule?
(ii) What is the hybridization of the central atom?
(ii) Indicate which orbitals are used to form the following bonds:
a) Br-CI
b) Br-O (o-bond) c) Br-O (TT-bond)
(iv) Indicate which orbital contain the non-bonding electrons on the central atom.
:Br
CI
(v) Is this molecule hypervalent or hypovalent?
Transcribed Image Text:Use valence bond theory to describe the hybridized bonding in the following molecule. (i) What is the shape of this molecule? (ii) What is the hybridization of the central atom? (ii) Indicate which orbitals are used to form the following bonds: a) Br-CI b) Br-O (o-bond) c) Br-O (TT-bond) (iv) Indicate which orbital contain the non-bonding electrons on the central atom. :Br CI (v) Is this molecule hypervalent or hypovalent?
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