ORGANIC CHEMISTRY SOLUTIONS MANUAL
ORGANIC CHEMISTRY SOLUTIONS MANUAL
5th Edition
ISBN: 9781260367546
Author: SMITH
Publisher: MCG CUSTOM
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Chapter 15, Problem 15.9P
Interpretation Introduction

(a)

Interpretation: The major product formed when given cycloalkane is heated with Br2 is to be drawn.

Concept introduction: Free radicals are classified as 1°, 2° or 3° depending upon the number of alkyl groups attached to it. The number of alkyl substituents increases, the stability of radical increases. This is due to the fact alkyl substituents donate their electrons to electron deficient radicals.

Halogens react with alkanes in presence of heat or light to form alkyl halides. This is known as halogenation reaction. This is a free radical substitution reaction. In this the halogen substitutes the hydrogen atom from CH sigma bond of the alkane.

Expert Solution
Check Mark

Answer to Problem 15.9P

The major product formed when given cycloalkane is heated with Br2 is shown below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 1

Explanation of Solution

The given species is,

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 2

Figure 1

Three types of radicals can be formed from cleavage of CH bond in the given molecule. Carbon atom highlighted produces 3° radical while the other carbon atoms of the cycloalkane produce 2° radical and methyl group produces 1° radical.

The number of alkyl substituents increases, the stability of radical increases. The order of stability is 1°<2°<3°. Higher the stability of the radical formed, weaker is the CH bond. The most stable radical is 3° radical. Hence, the major product formed is by the cleavage of 3°CH bond. The corresponding reaction is given below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 3

Figure 2

Conclusion

The major product formed when given cycloalkane is heated with Br2 is shown in Figure 2.

Interpretation Introduction

(b)

Interpretation: The major product formed when given cycloalkane is heated with Br2 is to be drawn.

Concept introduction: Free radicals are classified as 1°, 2° or 3° depending upon the number of alkyl groups attached to it. The number of alkyl substituents increases, the stability of radical increases. This is due to the fact alkyl substituents donate their electrons to electron deficient radicals.

Halogens react with alkanes in presence of heat or light to form alkyl halides. This is known as halogenation reaction. This is a free radical substitution reaction. In this the halogen substitutes the hydrogen atom from CH sigma bond of the alkane.

Expert Solution
Check Mark

Answer to Problem 15.9P

The major product formed when given cycloalkane is heated with Br2 is shown below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 4

Explanation of Solution

The given species is,

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 5

Figure 3

Three types of radicals can be formed from cleavage of CH bond in the given molecule. Carbon atom highlighted produces 3° radical while the other carbon atoms of the cycloalkane produce 2° radical and methyl group produces 1° radical.

The number of alkyl substituents increases, the stability of radical increases. The order of stability is 1°<2°<3°. Higher the stability of the radical formed, weaker is the CH bond. The most stable radical is 3° radical. Hence, the major product formed is by the cleavage of 3°CH bond. The corresponding reaction is given below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 6

Figure 4

Conclusion

The major product formed when given cycloalkane is heated with Br2 is shown in Figure 4.

Interpretation Introduction

(c)

Interpretation: The major product formed when given cycloalkane is heated with Br2 is to be drawn.

Concept introduction: Free radicals are classified as 1°, 2° or 3° depending upon the number of alkyl groups attached to it. The number of alkyl substituents increases, the stability of radical increases. This is due to the fact alkyl substituents donate their electrons to electron deficient radicals.

Halogens react with alkanes in presence of heat or light to form alkyl halides. This is known as halogenation reaction. This is a free radical substitution reaction. In this the halogen substitutes the hydrogen atom from CH sigma bond of the alkane.

Expert Solution
Check Mark

Answer to Problem 15.9P

The major product formed when given cycloalkane is heated with Br2 is shown below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 7

Explanation of Solution

The given species is,

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 8

Figure 5

Three types of radicals can be formed from cleavage of CH bond in the given molecule. Carbon atom highlighted produces 3° radical while the other carbon atoms of the cycloalkane produce 2° radical and methyl group produces 1° radical.

The number of alkyl substituents increases, the stability of radical increases. The order of stability is 1°<2°<3°. Higher the stability of the radical formed, weaker is the CH bond. The most stable radical is 3° radical. Hence, the major product formed is by the cleavage of 3°CH bond. The corresponding reaction is given below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 9

Figure 6

Conclusion

The major product formed when given cycloalkane is heated with Br2 is shown in Figure 6.

Interpretation Introduction

(c)

Interpretation: The major product formed when given cycloalkane is heated with Br2 is to be drawn.

Concept introduction: Free radicals are classified as 1°, 2° or 3° depending upon the number of alkyl groups attached to it. The number of alkyl substituents increases, the stability of radical increases. This is due to the fact alkyl substituents donate their electrons to electron deficient radicals.

Halogens react with alkanes in presence of heat or light to form alkyl halides. This is known as halogenation reaction. This is a free radical substitution reaction. In this the halogen substitutes the hydrogen atom from CH sigma bond of the alkane.

Expert Solution
Check Mark

Answer to Problem 15.9P

The major product formed when given cycloalkane is heated with Br2 is shown below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 10

Explanation of Solution

The given species is,

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 11

Figure 7

Two types of radicals can be formed from cleavage of CH bond in the given molecule. Carbon atoms of the cycloalkane produce 2° radical and methyl group produces 1° radical.

The number of alkyl substituents increases, the stability of radical increases. The order of stability is 1°<2°<3°. Higher the stability of the radical formed, weaker is the CH bond. The most stable radical is 3° radical. Hence, the major product formed is by the cleavage of 2°CH bond. The corresponding reaction is given below.

ORGANIC CHEMISTRY SOLUTIONS MANUAL, Chapter 15, Problem 15.9P , additional homework tip 12

Figure 8

Conclusion

The major product formed when given cycloalkane is heated with Br2 is shown in Figure 8.

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Chapter 15 Solutions

ORGANIC CHEMISTRY SOLUTIONS MANUAL

Ch. 15 - Prob. 15.1PCh. 15 - Prob. 15.2PCh. 15 - Prob. 15.3PCh. 15 - Prob. 15.4PCh. 15 - Prob. 15.5PCh. 15 - Problem 15.6 Using mechanism 15.1 as guide, write...Ch. 15 - Prob. 15.7PCh. 15 - Problem 15.8 Which bond in the each compound is...Ch. 15 - Prob. 15.9PCh. 15 - Prob. 15.10P
Ch. 15 - Prob. 15.11PCh. 15 - Prob. 15.12PCh. 15 - Prob. 15.13PCh. 15 - Prob. 15.14PCh. 15 - Prob. 15.15PCh. 15 - Prob. 15.16PCh. 15 - Draw the products of each reaction. a. b. c. Ch. 15 - Draw all constitutional isomers formed when each...Ch. 15 - Draw the structure of the four allylic halides...Ch. 15 - Problem 15.20 Which compounds can be prepared in...Ch. 15 - Which CH bond is most readily cleaved in linolenic...Ch. 15 - Prob. 15.22PCh. 15 - Prob. 15.23PCh. 15 - Problem 15.24 When adds to under radical...Ch. 15 - Prob. 15.25PCh. 15 - Prob. 15.26PCh. 15 - Problem 15.27 Draw the steps of the mechanism that...Ch. 15 - Prob. 15.28PCh. 15 - Prob. 15.29PCh. 15 - Prob. 15.30PCh. 15 - Prob. 15.31PCh. 15 - Prob. 15.32PCh. 15 - Prob. 15.33PCh. 15 - Prob. 15.34PCh. 15 - 15.35 What is the major monobromination product...Ch. 15 - Prob. 15.36PCh. 15 - 15.37 What alkane is needed to make each alkyl...Ch. 15 - 15.38 Which alkyl halides can be prepared in good...Ch. 15 - Prob. 15.39PCh. 15 - 15.40 Explain why radical bromination of p-xylene...Ch. 15 - a. What product(s) (excluding stereoisomers) are...Ch. 15 - Prob. 15.42PCh. 15 - 15.43 Draw the products formed when each alkene is...Ch. 15 - 15.44 Draw all constitutional isomers formed when...Ch. 15 - 15.45 Draw the organic products formed in each...Ch. 15 - Prob. 15.46PCh. 15 - 15.47 Treatment of a hydrocarbon A (molecular...Ch. 15 - 15.48 Draw the products formed in each reaction...Ch. 15 - Prob. 15.49PCh. 15 - 15.50 Draw all the monochlorination products that...Ch. 15 - Prob. 15.51PCh. 15 - 15.52 (a) Draw the products (including...Ch. 15 - 15.53 Consider the following bromination: . a....Ch. 15 - 15.54 Draw a stepwise mechanism for the following...Ch. 15 - Prob. 15.55PCh. 15 - Prob. 15.56PCh. 15 - 15.57 Devise a synthesis of each compound from...Ch. 15 - Prob. 15.58PCh. 15 - Prob. 15.59PCh. 15 - 15.60 Devise a synthesis of each compound using ...Ch. 15 - Prob. 15.61PCh. 15 - Prob. 15.62PCh. 15 - 15.63 As described in Section 9.16, the...Ch. 15 - 15.64 Ethers are oxidized with to form...Ch. 15 - Prob. 15.65PCh. 15 - Prob. 15.66PCh. 15 - 15.67 In cells, vitamin C exists largely as its...Ch. 15 - What monomer is needed to form each...Ch. 15 - Prob. 15.69PCh. 15 - Prob. 15.70PCh. 15 - 15.71 Draw a stepwise mechanism for the following...Ch. 15 - 15.72 As we will learn in Chapter 30, styrene...Ch. 15 - Prob. 15.73PCh. 15 - 15.74 A and B, isomers of molecular formula , are...Ch. 15 - Prob. 15.75PCh. 15 - 15.76 Draw a stepwise mechanism for the...Ch. 15 - Prob. 15.77PCh. 15 - Prob. 15.78PCh. 15 - Prob. 15.79P
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