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Chapter 22, Problem 22.46P

Draw the product formed when phenylacetonitrile ( C 6 H 5 CH 2 CN ) is treated with each reagent.

a. H 3 O +

b. H 2 O,  OH

c. [1] CH 3 MgBr; [2] H 2 O

d. [1] CH 3 CH 2 Li; [2] H 2 O

e. [1] DIBAL-H; [2] H 2 O

f. [1] LiAlH 4 ; [2] H 2 O

Expert Solution
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Interpretation Introduction

(a)

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H3O+ is to be drawn.

Concept introduction: Hydrolysis of nitriles in acidic medium converts them to the corresponding carboxylic acids. The reaction involves two parts; that is nucleophilic addition followed by nucleophilic acyl substitution.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H3O+ is

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  1

Explanation of Solution

The given compound is a nitrile.

Hydrolysis of nitriles in acidic medium converts them to the corresponding carboxylic acids. The reaction involves two parts; that is nucleophilic addition followed by nucleophilic acyl substitution. Phenylacetonitrile (C6H5CH2CN) reacts with H3O+ to form phenylacetic acid as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  2

Figure 1

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H3O+ is drawn in Figure 1.

Expert Solution
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Interpretation Introduction

(b)

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H2O, HO is to be drawn.

Concept introduction: Phenylacetonitrile undergo hydrolysis in basic medium to form corresponding carboxylate ion. The mechanism of the reaction involves two parts. The first part is conversion of nitrile to a 1ο amide. The second part is hydrolysis to convert 1ο amide into carboxylate anion.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H2O, HO is

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  3

Explanation of Solution

The given compound is a nitrile.

Hydrolysis of nitriles in basic medium converts them to the corresponding carboxylate anion. Nitriles react with H2O, HO to form corresponding carboxylate ions. Phenylacetonitrile (C6H5CH2CN) reacts with H2O, HO to form phenylcarboxylate ion as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  4

Figure 2

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with H2O, HO is drawn in Figure 2.

Expert Solution
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Interpretation Introduction

(c)

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3MgBr; [2]H2O is to be drawn.

Concept introduction: The Grignard reagents are organometallic compounds having the general formula RMgX where R is an alkyl or aryl group and X is a halogen atom. Nitriles react with both Grignard reagent, and organolithium reagents, followed by hydrolysis to yield ketones. The reaction utilizes R nucleophile to yield desired product.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3MgBr; [2]H2O is

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  5

Explanation of Solution

The given compound is a nitrile.

Nitriles react with both Grignard reagent, and organolithium reagents, followed by hydrolysis to yield ketones. The reaction utilizes R nucleophile to yield desired product.

Phenylacetonitrile undergoes Grignard reaction with [1]CH3MgBr;[2]H2O to form 1-phenylpropan-2-one as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  6

Figure 3

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3MgBr; [2]H2O is drawn in Figure 3.

Expert Solution
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Interpretation Introduction

(d)

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3CH2Li;[2]H2O is to be drawn.

Concept introduction: Organolithium reagents are organometallic compounds having the general formula RLi where R can be an alkyl or aryl group. They have a carbon-lithium bond and yield similar product as Grignard reaction.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3CH2Li;[2]H2O is drawn in Figure 4.

Explanation of Solution

The given compound is a nitrile.

Nitriles react with both Grignard reagent, and organolithium reagents, followed by hydrolysis to yield ketones. The reaction utilizes R nucleophile to yield desired product.

The treatment of phenylacetonitrile with [1]CH3CH2Li;[2]H2O leads to the formation of 1-phenyl-2-butanone as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  7

Figure 4

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]CH3CH2Li;[2]H2O is drawn in Figure 4.

Expert Solution
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Interpretation Introduction

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]DIBAL-H; [2]H2O is to be drawn.

(e)

Concept introduction: DIBAL-H is a selective and a milder reducing agent than LiAlH4. Nitrile compounds are converted to corresponding aldehydes in the presence of milder reducing agents like DIBAL-H, followed by hydrolysis.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]DIBAL-H; [2]H2O is

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  8

Explanation of Solution

Diisobutylaluminiumhydride (DIBAL-H) is a selective reducing agent. It readily converts nitriles compounds to corresponding aldehydes. Phenylacetonitrile (C6H5CH2CN) reacts with [1]DIBAL-H; [2]H2O to form phenylacetic acid as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  9

Figure 5

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]DIBAL-H; [2]H2O is drawn in Figure 5.

Expert Solution
Check Mark
Interpretation Introduction

(f)

Interpretation: The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]LiAlH4; [2]H2O is to be drawn.

Concept introduction: LiAlH4 is a strong reducing agent. The reaction of a nitrile with [1]LiAlH4; [2]H2O adds two equivalent of H2 across the CN bond to yield primary amines.

Answer to Problem 22.46P

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]LiAlH4; [2]H2O is

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  10

Explanation of Solution

Nitriles react with [1]LiAlH4; [2]H2O to form amines. The overall reaction adds two equivalent of H2 across the CN bond to yield primary amine. Phenylacetonitrile (C6H5CH2CN) reacts with [1]LiAlH4; [2]H2O to form 2-phenyl ethylamine as depicted below.

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card, Chapter 22, Problem 22.46P , additional homework tip  11

Figure 6

Conclusion

The product formed from the treatment of phenylacetonitrile (C6H5CH2CN) with [1]LiAlH4; [2]H2O is drawn in Figure 6.

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Chapter 22 Solutions

Package: Loose Leaf for Organic Chemistry with Biological Topics with Connect Access Card

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