In Chapter 10, we saw that electronegativity differences determine whether bond dipoles exist in a molecule and that molecular shape determines whether bond dipoles cancel (nonpolar molecules) or combine to produce a resultant dipole moment (polar molecules). Thus, the ozone molecule, O 2 , has no bond dipoles because all the atoms are alike. Yet, O 2 does have a resultant dipole moment: µ = 0.534 D . The electrostatic potential map for ozone is shown below. Use the electrostatic potential map to decide the direction of the dipole. Using the ideas of delocalized bonding in molecules, can you rationalize this electrostatic potential map?
In Chapter 10, we saw that electronegativity differences determine whether bond dipoles exist in a molecule and that molecular shape determines whether bond dipoles cancel (nonpolar molecules) or combine to produce a resultant dipole moment (polar molecules). Thus, the ozone molecule, O 2 , has no bond dipoles because all the atoms are alike. Yet, O 2 does have a resultant dipole moment: µ = 0.534 D . The electrostatic potential map for ozone is shown below. Use the electrostatic potential map to decide the direction of the dipole. Using the ideas of delocalized bonding in molecules, can you rationalize this electrostatic potential map?
Solution Summary: The author explains that the direction of the dipole of ozone should be determined using the electrostatic potential map.
In Chapter 10, we saw that electronegativity differences determine whether bond dipoles exist in a molecule and that molecular shape determines whether bond dipoles cancel (nonpolar molecules) or combine to produce a resultant dipole moment (polar molecules). Thus, the ozone molecule,
O
2
, has no bond dipoles because all the atoms are alike. Yet,
O
2
does have a resultant dipole moment:
µ
=
0.534
D
. The electrostatic potential map for ozone is shown below. Use the electrostatic potential map to decide the direction of the dipole. Using the ideas of delocalized bonding in molecules, can you rationalize this electrostatic potential map?
in which spectral range of EMR,
atomic and ionic lines of metal lies
Q2: Label the following molecules as chiral or achiral, and label each stereocenter as R or S.
CI
CH3
CH3
NH2
C
CH3
CH3
Br
CH3
X
&p
Bra
'CH 3
"CH3
X
Br
CH3
Me - N
OMe
O
DuckDuck
Chapter 11 Solutions
General Chemistry: Principles And Modern Applications Plus Mastering Chemistry With Pearson Etext -- Access Card Package (11th Edition)
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Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell