32.4.23: Chapter 24

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Problem 24-1

(a) N-Methylethylamine

(b) Tricyclohexylamine

(d) N-Methylpyrrolidine

(e) Diisopropylamine

(f) 1,3-Butanediamine

Problem 24-2

(a)

The structure of triisopropyl amine. It comprises three isopropyl groups linked to a nitrogen atom.

(b)

The structure of triallylamine. It has a nitrogen connected to three groups with structural formula C H 2 C H C H 2 (double bond between second and third carbons).

(c)

The structure of N-methylaniline. It comprises a benzene ring with an N H group linked to a methyl group.

(d)

The structure of N-ethyl-N-methylcyclopentylamine. It comprises nitrogen with ethyl, methyl, and cyclopentyl substituents.

(e)

The structure of N-isopropylcyclohexylamine. It comprises cyclohexane linked to an N H linked to a C H group further connected to two methyl groups at C 1.

(f)

A five-membered ring, one member of which is nitrogen. There are double bonds at C 2 and C 4, and nitrogen has an additional ethyl substituent.

Problem 24-3

(a)

A benzene ring fused to another five-membered ring, one member of which is nitrogen. There is a double bond between non-fusion carbon atoms. Benzene has a methoxy substituent.

(b)

A five-membered ring, one member of which is nitrogen. There are double bonds at C 2 and C 4, methyl at C 3, and nitrogen has an additional methyl substituent.

(c)

A six-membered ring, one member of which is nitrogen, with alternating single and double bonds. Opposite the nitrogen is the substituent N with two methyl groups.

(d)

A six-membered ring, two members of which are nitrogen, with one carbon between them. There are alternating single and double bonds. C 5 has an amino substituent.

Problem 24-4

(a) CH₃CH₂NH₂

(b) NaOH

Problem 24-5 Propylamine is stronger; benzylamine pK_b = 4.67; propylamine pK_b = 3.29

Problem 24-6

(a) p-Nitroaniline < p-Aminobenzaldehyde < p-Bromoaniline

(b) p-Aminoacetophenone < p-Chloroaniline < p-Methylaniline

Problem 24-7 Pyrimidine is essentially 100% neutral (unprotonated).

Problem 24-8

(a) Propanenitrile or propanamide

(b) N-Propylpropanamide

(d) N-Phenylacetamide

Problem 24-9 The reaction takes place by two nucleophilic acyl substitution reactions.

Problem 24-10 4-(2-Bromoethyl)benzene-1,2-diol reacts with ammonia or 4-(bromomethyl)benzene-1,2-diol reacts with sodium cyanide, then lithium aluminum hydride.

4-(2-Bromoethyl)benzene-1,2-diol reacts with ammonia or 4-(bromomethyl)benzene-1,2-diol reacts with sodium cyanide, then lithium aluminum hydride.

Problem 24-11

(a) Ethylamine + acetone, or isopropylamine + acetaldehyde

(b) Aniline + acetaldehyde

Problem 24-12 A benzene ring with aldehyde group on C 1 and methyl on C 3 reacts with dimethylamine in the presence of sodium borohydride. The product is not mentioned.

A benzene ring with aldehyde group on C 1 and methyl on C 3 reacts with dimethylamine in the presence of sodium borohydride. The product is not mentioned.

Problem 24-13

(a) 4,4-Dimethylpentanamide or 4,4-dimethylpentanoyl azide

(b) p-Methylbenzamide or p-methylbenzoyl azide

Problem 24-14

(a) 3-Octene and 4-octene

(b) Cyclohexene

(d) Ethylene and cyclohexene

Problem 24-15 H₂C

\text{═}

CHCH₂CH₂CH₂N(CH₃)₂

Problem 24-16 1. HNO₃, H₂SO₄; 2. H₂/PtO₂; 3. (CH₃CO)₂O; 4. HOSO₂Cl; 5. aminothiazole; 6. H₂O, NaOH

Problem 24-17

(a) 1. HNO₃, H₂SO₄; 2. H₂/PtO₂; 3. 2 CH₃Br

(b) 1. HNO₃, H₂SO₄; 2. H₂/PtO₂; 3. (CH₃CO)₂O; 4. Cl₂; 5. H₂O, NaOH

(d) 1. HNO₃, H₂SO₄; 2. H₂/PtO₂; 3. (CH₃CO)₂O; 4. 2 CH₃Cl, AlCl₃; 5. H₂O, NaOH

Problem 24-18

(a) 1. CH₃Cl, AlCl₃; 2. HNO₃, H₂SO₄; 3. SnCl₂; 4. NaNO₂, H₂SO₄; 5. CuBr; 6. KMnO₄, H₂O

(b) 1. HNO₃, H₂SO₄; 2. Br₂, FeBr₃; 3. SnCl₂, H₃O⁺; 4. NaNO₂, H₂SO₄; 5. CuCN; 6. H₃O⁺

(d) 1. CH₃Cl, AlCl₃; 2. HNO₃, H₂SO₄; 3. SnCl₂; 4. NaNO₂, H₂SO₄; 5. CuCN; 6. H₃O⁺

(e) 1. HNO₃, H₂SO₄; 2. H₂/PtO₂; 3. (CH₃CO)₂O; 4. 2 Br₂; 5. H₂O, NaOH; 6. NaNO₂, H₂SO₄; 7. CuBr

Problem 24-19 1. HNO₃, H₂SO₄; 2. SnCl₂; 3a. 2 equiv. CH₃I; 3b. NaNO₂, H₂SO₄; 4. product of 3a + product of 3b

Problem 24-20 Orbital diagram of thiazole involving nitrogen, sulfur, and three hydrogens, all s p 2 hybridized. N and S carry lone pairs of electrons; six total electrons in the pi system.

Orbital diagram of thiazole involving nitrogen, sulfur, and three hydrogens, all s p 2 hybridized. N and S carry lone pairs of electrons; six total electrons in the pi system.

Problem 24-21 4.1% protonated

Problem 24-22 The attack of electrophile at C 2, C 3, and C 4 of pyridine. Mechanisms showing attack at C 2 and C 4 are labeled unfavorable.

Problem 24-23 The side-chain nitrogen is more basic than the ring nitrogen.

Problem 24-24

Reaction at C2 is disfavored because the aromaticity of the benzene ring is lost.

Structure of indole with arrows showing C 3 attacking electrophile. Resulting resonance structures show loss of aromaticity due to 8 electrons in pi system.

Problem 24-25 (CH₃)₃CCOCH₃ → (CH₃)₃CCH(NH₂)CH₃

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