Predict the hybridization, geometry, and bond angles for the central atoms in
b. CH3CH=NH
Predict the hybridization, geometry, and bond angles for the central atoms in
b. CH3CH=NH
Predict the hybridization, geometry, and bond angles for the central atoms in
a. but-2-ene, CH3CH=CHCH3
a. Which of the species have bond angles of 109.5°?
b. Which of the species have bond angles of 120°?
H2O H3O+ +CH3 BF3
Do the sp2 carbons and the indicated sp3 carbons lie in the same plane?
For each of the following molecules, indicate the hybridization of each carbon and give the approximate values of all the bond angles:
a. CH3C≡CH
Predict the hybridization and geometry of the carbon and nitrogen atoms in the following molecules and ions. (Hint: Resonance.)
a.
b.
c.
In most amines, the nitrogen atom is sp3 hybridized, with a pyramidal structure and bond angles close to 109°. In urea, both nitrogen atoms are found to be planar, with bond angles close to 120°. Explain this surprising finding. (Hint: Consider resonance forms and the overlap needed in them.)
Predict the hybridization, geometry, and bond angles for the carbon and nitrogen atoms in acetonitrile (CH3–C≡N:).
Describe the orbitals used in bonding and the bond angles in the following compounds:
e. BF3
Predict the approximate bond angles in
a. the methyl cation.
b. the methyl radical.
c. the methyl anion.
Predict the approximate bond angles for the following:
c. the C—C—N bond angle in CH3C≡N
d. the C—C—N bond angle in CH3CH2NH2
Circle the coplanar atoms in the following structure:
For each of the following compounds and ions,
1. Draw a Lewis structure.
2. Show the kinds of orbitals that overlap to form each bond.
3. Give approximate bond angles around each atom except hydrogen.
c. CH2=N–CH3
You drew the Lewis structures of the following compounds and ion in Assessment 2.32. Predict their shapes around the central atom based on the Lewis structure.
(d) CO32-
Predict the approximate size of the following bond angles.
(b) the C—N—C bond angle in a secondary amine