The N 2 O molecule is linear and polar. On the basis of this experimental evidence, the correct arrangement among NNO and NON is to be stated with explanation. Lewis structure of N 2 O is to be drawn and formal charge on each atom and hybridization of central atom is to be stated. Multiple bonding in NNO is to be described. Concept introduction: When the atomic orbitals overlap with each other in the region where density of electrons is high, then molecular orbitals are formed. Overlap of the atomic orbitals determines the efficiency of the interaction between the atomic orbitals. Energy of bonding molecular orbitals is less than the nonbonding molecular orbitals. To determine: The correct arrangement for N 2 O molecule.
The N 2 O molecule is linear and polar. On the basis of this experimental evidence, the correct arrangement among NNO and NON is to be stated with explanation. Lewis structure of N 2 O is to be drawn and formal charge on each atom and hybridization of central atom is to be stated. Multiple bonding in NNO is to be described. Concept introduction: When the atomic orbitals overlap with each other in the region where density of electrons is high, then molecular orbitals are formed. Overlap of the atomic orbitals determines the efficiency of the interaction between the atomic orbitals. Energy of bonding molecular orbitals is less than the nonbonding molecular orbitals. To determine: The correct arrangement for N 2 O molecule.
Solution Summary: The author explains that the correct arrangement among NNO and () is to be stated with explanation.
Interpretation: The
N2O molecule is linear and polar. On the basis of this experimental evidence, the correct arrangement among
NNO and
NON is to be stated with explanation. Lewis structure of
N2O is to be drawn and formal charge on each atom and hybridization of central atom is to be stated. Multiple bonding in
NNO is to be described.
Concept introduction: When the atomic orbitals overlap with each other in the region where density of electrons is high, then molecular orbitals are formed. Overlap of the atomic orbitals determines the efficiency of the interaction between the atomic orbitals.
Energy of bonding molecular orbitals is less than the nonbonding molecular orbitals.
To determine: The correct arrangement for
N2O molecule.
(b)
Interpretation Introduction
Interpretation: The
N2O molecule is linear and polar. On the basis of this experimental evidence, the correct arrangement among
NNO and
NON is to be stated with explanation. Lewis structure of
N2O is to be drawn and formal charge on each atom and hybridization of central atom is to be stated. Multiple bonding in
NNO is to be described.
Concept introduction: When the atomic orbitals overlap with each other in the region where density of electrons is high, then molecular orbitals are formed. Overlap of the atomic orbitals determines the efficiency of the interaction between the atomic orbitals.
Energy of bonding molecular orbitals is less than the nonbonding molecular orbitals.
To determine: The Lewis structure of
N2O, formal charge on each atom and hybridization of central atom.
(c)
Interpretation Introduction
Interpretation: The
N2O molecule is linear and polar. On the basis of this experimental evidence, the correct arrangement among
NNO and
NON is to be stated with explanation. Lewis structure of
N2O is to be drawn and formal charge on each atom and hybridization of central atom is to be stated. Multiple bonding in
NNO is to be described.
Concept introduction: When the atomic orbitals overlap with each other in the region where density of electrons is high, then molecular orbitals are formed. Overlap of the atomic orbitals determines the efficiency of the interaction between the atomic orbitals.
Energy of bonding molecular orbitals is less than the nonbonding molecular orbitals.
To determine: The description of multiple bonding in
N2O.
1. The model of the sulfate ion can be correctly made starting with a Lewis structure that has
four single bonds or it can be made with two single and two double bonds.
a. Draw both Lewis structures
b. Assign formal charges to all atoms.
c. Show the best approximation of the resonance hybrid.
d. X-ray crystallography tells us that all four bonds in sulfate are the same length. All four
bonds are shorter than single bonds. Does this agree with the resonance hybrid? Explain.
e. Do you expect sulfate to be polar? Explain your answer.
Question 92
Consider the molecules PF3 and PF5.
A. Draw the Lewis electron-dot structures for PF3 and PF5 and predict the molecular geometry.
B. Is the PF3 polar or non-polar and why?
C. On the basis of bonding principles, predict whether each of the following compounds exists. In each case, explain your prediction.
(i) NF5
(ii) AsF5