Organic Chemistry
Organic Chemistry
5th Edition
ISBN: 9780078021558
Author: Janice Gorzynski Smith Dr.
Publisher: McGraw-Hill Education
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Chapter 20, Problem 20.7P

Draw the products formed when CH 3 COCH 2 CH 2 CH = CH 2 is treated with each reagent: (a) LiAlH 4 , then H 2 O ; (b) NaBH 4  in CH 3 OH ; (c) H 2 ( 1equiv ) , Pd-C ; (d) H 2 ( excess ) , Pd-C ; (e) NaBH 4 ( excess ) in CH 3 OH ; (f) NaBD 4  in CH 3 OH .

Expert Solution
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Interpretation Introduction

(a)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with LiAlH4, then H2O is to be drawn.

Concept introduction: Treatment of carbonyl compounds with LiAlH4, then H2O yields alcohols. It is a type of reduction reaction. The reduction of ketone by LiAlH4, then H2O yields secondary alcohol.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with LiAlH4, then H2O is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  1

Explanation of Solution

The reduction of ketone by LiAlH4, then H2O yields secondary alcohol. The double bond is not reduced by it. Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with LiAlH4, then H2O is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  2

Figure 1

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with LiAlH4, then H2O is shown in Figure 1.

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Interpretation Introduction

(b)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4 in CH3OH is to be drawn.

Concept introduction: Treatment of carbonyl compounds with NaBH4 in CH3OH yields alcohols. It is a type of reduction reaction. The reduction of an aldehyde by NaBH4 in CH3OH yields primary alcohol and the reduction of ketone by NaBH4 in CH3OH yield secondary alcohol.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4 in CH3OH is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  3

Explanation of Solution

The reduction of ketone by NaBH4 in CH3OH yields secondary alcohol. The double bond is not reduced by it. Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4 in CH3OH is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  4

Figure 2

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4 in CH3OH is shown in Figure 2.

Expert Solution
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Interpretation Introduction

(c)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(1equiv), Pd-C is to be drawn.

Concept introduction: Treatment of carbonyl compounds with H2(1equiv), Pd-C yields alcohols. It is a type of reduction reaction. H2(1equiv) gas reduces the double bond selectively.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(1equiv), Pd-C is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  5

Explanation of Solution

Treatment of carbonyl compounds with H2(1equiv), Pd-C yields alcohols. H2(1equiv) gas reduces the double bond. Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(1equiv), Pd-C is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  6

Figure 3

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(1equiv), Pd-C is shown in Figure 3.

Expert Solution
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Interpretation Introduction

(d)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(excess), Pd-C is to be drawn.

Concept introduction: Treatment of carbonyl compounds with H2(excess), Pd-C yields alcohols. It is a type of reduction reaction. H2(excess) gas present in the palladium charcoal catalyst reduces double bond as well as keto group.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(excess), Pd-C is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  7

Explanation of Solution

Treatment of carbonyl compounds with H2(excess), Pd-C yields alcohols. Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(excess), Pd-C is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  8

Figure 4

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with H2(excess), Pd-C is shown in Figure 4.

Expert Solution
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Interpretation Introduction

(e)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4(excess)in CH3OH is to be drawn.

Concept introduction: Treatment of carbonyl compounds with NaBH4 in CH3OH yields alcohols. It is a type of reduction reaction. The reduction of an aldehyde by NaBH4 in CH3OH yields primary alcohol and the reduction of ketone by NaBH4 in CH3OH yield secondary alcohol.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4(excess)in CH3OH is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  9

Explanation of Solution

The reduction of ketone by NaBH4 in CH3OH yields secondary alcohol. The double bond is not reduced by it Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4(excess)in CH3OH is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  10

Figure 5

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBH4(excess)in CH3OH is shown in Figure 5.

Expert Solution
Check Mark
Interpretation Introduction

(f)

Interpretation: The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBD4 in CH3OH is to be drawn.

Concept introduction: Treatment of carbonyl compounds with NaBD4 in CH3OH yields alcohols. It is a type of reduction reaction. The reduction of an aldehyde by NaBD4 in CH3OH yields primary alcohol and the reduction of ketone by NaBD4 in CH3OH yield secondary alcohol.

Answer to Problem 20.7P

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBD4 in CH3OH is,

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  11

Explanation of Solution

The reduction of ketone by NaBD4 in CH3OH yields secondary alcohol. The double bond is not reduced by it. Hence, the product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBD4 in CH3OH is shown below.

Organic Chemistry, Chapter 20, Problem 20.7P , additional homework tip  12

Figure 6

Conclusion

The product formed by the treatment of CH3COCH2CH2CH=CH2 with NaBD4 in CH3OH is shown in Figure 6.

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Chapter 20 Solutions

Organic Chemistry

Ch. 20 - Prob. 20.11PCh. 20 - Problem 20.12 Draw the products formed from ...Ch. 20 - Prob. 20.13PCh. 20 - Prob. 20.14PCh. 20 - Prob. 20.15PCh. 20 - Problem-20.16 Review the oxidation reactions using...Ch. 20 - Problem-20.17 Write the step(s) needed to convert ...Ch. 20 - Problem-20.18 Oct-1-yne reacts rapidly with ,...Ch. 20 - Prob. 20.19PCh. 20 - Prob. 20.20PCh. 20 - Problem 20.21 Draw the product of each reaction. ...Ch. 20 - Problem 20.22 Draw the products (including...Ch. 20 - Problem 20.23 What Grignard reagent and carbonyl...Ch. 20 - Problem 20.24 Linalool (the Chapter 9 opening...Ch. 20 - Problem 20.25 What Grignard reagent and carbonyl...Ch. 20 - Prob. 20.26PCh. 20 - Draw the products formed when each compound is...Ch. 20 - Problem 20.28 What ester and Grignard reagent are...Ch. 20 - Prob. 20.29PCh. 20 - Problem 20.30 What reagent is needed to convert ...Ch. 20 - Prob. 20.31PCh. 20 - What carboxylic acid formed from each alkyl halide...Ch. 20 - Prob. 20.33PCh. 20 - Problem 20.34 Draw the product when each compound...Ch. 20 - Problem 20.35 Synthesize each compound from...Ch. 20 - Prob. 20.36PCh. 20 - 20.37 Devise a synthesis of each alcohol from...Ch. 20 - 20.38 Draw the products formed when pentanal is...Ch. 20 - 20.39 Draw the product formed when is treated...Ch. 20 - The stereochemistry of the products of reduction...Ch. 20 - Prob. 20.41PCh. 20 - 20.42 Draw the products or each reduction...Ch. 20 - Prob. 20.43PCh. 20 - 20.44 Draw all stereoisomers formed in each...Ch. 20 - Prob. 20.45PCh. 20 - 20.46 Treatment of ketone A with ethynylithium...Ch. 20 - 20.47 Explain why metal hydride reduction gives an...Ch. 20 - Prob. 20.48PCh. 20 - 20.49 Identify the lettered compounds in the...Ch. 20 - Prob. 20.50PCh. 20 - 20.51 Draw a stepwise mechanism for the following...Ch. 20 - 20.52 Draw a stepwise mechanism for the following...Ch. 20 - Prob. 20.53PCh. 20 - 20.54 Draw a stepwise mechanism for the following...Ch. 20 - Prob. 20.55PCh. 20 - Prob. 20.56PCh. 20 - 20.57 What ester and Grignard reagent are needed...Ch. 20 - 20.58 What organolithium reagent and carbonyl...Ch. 20 - 20.59 What epoxide and organometallic reagent are...Ch. 20 - Prob. 20.60PCh. 20 - 20.61 Propose two different methods to synthesize...Ch. 20 - 20.62 Synthesize each compound from cyclohexanol...Ch. 20 - 20.63 Convert propan-2-ol into each compound....Ch. 20 - 20.64 Convert benzene into each compound. You may...Ch. 20 - 20.65 Design a synthesis of each compound from...Ch. 20 - 20.66 Synthesize each compound from the given...Ch. 20 - Prob. 20.67PCh. 20 - Prob. 20.68PCh. 20 - 20.69 An unknown compound A (molecular formula )...Ch. 20 - 20.70 Treatment of compound C (molecular formula )...Ch. 20 - 20.71 Treatment of compound E (molecular formula )...Ch. 20 - 20.72 Reaction of butanenitrile () with methyl...Ch. 20 - 20.73 Treatment of isobutene with forms a...Ch. 20 - 20.74 Draw a stepwise mechanism for the following...Ch. 20 - Prob. 20.75PCh. 20 - 20.76 Lithium tri-sec-butylborohydride, also known...Ch. 20 - Prob. 20.77PCh. 20 - Prob. 20.78PCh. 20 - Prob. 20.79PCh. 20 - 20.80 Draw a stepwise mechanism for the following...Ch. 20 - Prob. 20.81P
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