EBK ORGANIC CHEMISTRY
EBK ORGANIC CHEMISTRY
12th Edition
ISBN: 9781119233664
Author: Snyder
Publisher: VST
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Chapter 7, Problem 1PP
Interpretation Introduction

Interpretation:

The IUPAC names of each of the given compounds are to be given by using EZ designation.

Concept introduction:

The priority of groups in nomenclature is assigned according to Cahn-Ingold-Prelog (CIP Rule) convention rules:

The higher the atomic mass, the higher will be the priority.

If priority cannot be assigned according to atomic mass, then assign the priority according to first point of difference.

If both the priority groups are on the same side of double-bonded carbon atom, then it is known as (Z) configuration.

But, if both the priority groups are diagonal to each other, then it is (E) configuration.

Rule for R/S Nomenclature:

4B(+)3B(-)2B(+)1B(-)

4B(+) means if 4th priority group is below then from 1 to 2 to 3 if leads a clockwise rotation then its R and if anticlockwise then it is S.

3B(-) means if 3rd priority group is below then from 1 to 2 to 4 if leads a clockwise rotation then its S and if anticlockwise then it is R.

Expert Solution & Answer
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Answer to Problem 1PP

Solution:

(E)-1-Bromo-1-chloropent-1-ene.

(E)-2-Bromo-1-chloro-1-iodobut-1-ene.

(Z)-3,5-Dimethylhex-2-ene.

(Z)-1-Chloro-1-iodo-2-methylbut-1-ene.

(Z,4S)-3,4-Dimethylhex-2-ene.

(Z,3S)-1-Bromo-2-chloro-3-methylhex-1-ene.

Explanation of Solution

a)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  1

The IUPAC name with (EZ) configuration can be done using the following steps:

Assign the priority to four groups, –Br gets first priority, pentyl group gets second, –Cl gets third, and –H gets fourth. Since both the priority groups are diagonal to each other, it is (E) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is pentane and hence pent- will be used and double bond is at the second position. Therefore, pent-1-ene is used.

Chloro and bromo groups are at first position. So, 1-bromo-1-chloropent-1-ene will be used.

Hence, the IUPAC name of the compound will be (E)-1-bromo-1-chloropent-1-ene.

b)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  2

The IUPAC name with (EZ) configuration can be done using the following steps:

Assign the priority to four groups, –I gets first priority, –Br gets second, –Cl gets third, and ethyl group gets fourth. Since both the priority groups are diagonal to each other, it is (E) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is butyl and hence but- will be used and double bond is at the first position. Therefore, but-1-ene is used.

Chloro and iodo groups are at first position and bromo group is at second position. So, 2-bromo-1-chloro-1-iodobut-1-ene will be used.

Hence, the IUPAC name of the compound will be (E)-2-bromo-1-chloro-1-iodobut-1-ene.

c)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  3

The IUPAC name with (EZ) configuration can be done using the following steps:

Assign the priority to four groups, 2-methylpropyl gets first priority, both methyl groups get second, and –H gets third. Since both the priority groups are on the same side, it is (Z) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is hexyl and hence hex- will be used and double bond is at the second position. Therefore, hex-2-ene is used.

There are two methyl groups at third and fifth positions. So, 3,5-dimethylhex-2-ene will be used.

Hence, the IUPAC name of the compound will be (Z)-3,5-dimethylhex-2-ene.

d)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  4

The IUPAC name with (EZ) configuration can be done using the following steps:

Assign the priority to four groups, –I gets first priority, –Cl gets second, ethyl group gets third, and methyl group gets fourth. Since both the priority groups are on the same side, it is (Z) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is butyl and hence but- will be used and double bond is at the first position. Therefore, but-1-ene is used.

There is one methyl group at second position, and chloro and iodo groups at first position. So, 1-chloro-1-iodo-2 methylbut-1-ene will be used.

Hence, the IUPAC name of the compound will be (Z)-1-chloro-1-iodo-2-methylbut-1-ene.

e)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  5

The IUPAC name with (EZ) configuration can be done using the following steps:

Assign the priority to four groups, 1-methylpropyl gets first priority, both methyl groups get second, and –H gets third. Since both the priority groups are on the same side, it is (Z) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is hexyl and hence hex- will be used and double bond is at the second position. Therefore, hex-2-ene is used.

There are two methyl groups at third and fourth position. So, 3,4-dimethylhex-2-ene will be used.

Carbon-4 is a chiral carbon. Assigning priority to the groups, 2-butene gets first priority, ethyl gets second, methyl gets third, and hydrogen gets fourth.

Move 1-2-3, it is in anticlockwise direction. So, it is (S) configuration. Hence, (4S) will be used.

Hence, the IUPAC name of the compound will be (Z,4S)-3,4-dimethylhex-2-ene.

f)

EBK ORGANIC CHEMISTRY, Chapter 7, Problem 1PP , additional homework tip  6

The IUPAC name can be done using the following steps:

Assign the priority to four groups, –Br gets first priority, –Cl gets second, 1-methylbutyl gets third, and –H gets fourth. Since both the priority groups are on the same side, it is (Z) configuration.

Select the longest carbon chain. The parent hydrocarbon chain is hexyl and hence hex- will be used and double bond is at the first position. Therefore, hex-1-ene is used.

There is one methyl group at third position, and chloro at second and bromo at first position. So, 1-bromo-2-chloro-3-methylhex-1-ene will be used.

Carbon-3 is a chiral carbon. Assigning priority to the groups, 1-bromo-2-chloroethene gets first priority, propyl gets second, methyl gets third, and hydrogen gets fourth.

Rotate the molecule such that –H is at a horizontal position and then move 1-2-3, it is in anticlockwise direction. So, it is (S) configuration. Hence, (3S) will be used.

Hence, the IUPAC name of the compound will be (Z,3S)-1-bromo-2-chloro-3-methylhex-1-ene.

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Chapter 7 Solutions

EBK ORGANIC CHEMISTRY

Ch. 7 - Practice Problem 7.11 (a) When...Ch. 7 - Prob. 12PPCh. 7 - Prob. 13PPCh. 7 - Practice Problem 7.14 Dehydration of 2-propanol...Ch. 7 - Practice Problem 7.15 Rank the following alcohols...Ch. 7 - Practice Problem 7.16 Acid-catalyzed dehydration...Ch. 7 - Practice Problem 7.17 Acid-catalyzed dehydration...Ch. 7 - Prob. 18PPCh. 7 - Prob. 19PPCh. 7 - Practice Problem 7.20 Show how you might...Ch. 7 - Prob. 21PPCh. 7 - Prob. 22PPCh. 7 - Practice Problem 7.23 Write the structure of...Ch. 7 - Prob. 24PPCh. 7 - Prob. 25PPCh. 7 - Practice Problem 7.26 (a) Devise retrosynthetic...Ch. 7 - Each of the following names is incorrect, Give the...Ch. 7 - Prob. 28PCh. 7 - Prob. 29PCh. 7 - Give the IUPAC names for each of the following:...Ch. 7 - Prob. 31PCh. 7 - Prob. 32PCh. 7 - Prob. 33PCh. 7 - Prob. 34PCh. 7 - 7.35. Write structural formulas for all the...Ch. 7 - 7.36. Explain the following observations: When...Ch. 7 - Prob. 37PCh. 7 - Arrange the following alcohols in order of their...Ch. 7 - Prob. 39PPCh. 7 - Prob. 40PPCh. 7 - Prob. 41PPCh. 7 - Prob. 42PPCh. 7 - Your task is to prepare isopropyl methyl ether by...Ch. 7 - Prob. 44PCh. 7 - Prob. 45PCh. 7 - Prob. 46PCh. 7 - 7.47. Starting with an appropriate alkyl halide...Ch. 7 - Prob. 48PCh. 7 - 7.49. What is the index of hydrogen deficiency...Ch. 7 - Prob. 50PCh. 7 - Prob. 51PCh. 7 - Compounds I and J both have the molecular formula...Ch. 7 - Prob. 53PCh. 7 - 7.54. Outline a synthesis of phenylethyne from...Ch. 7 - Prob. 55PPCh. 7 - Prob. 56PPCh. 7 - Prob. 57PPCh. 7 - cis-4-Bromocyclohexanol tBuOHtBuO racemic C6H10O...Ch. 7 - Prob. 59PPCh. 7 - Consider the interconversion of cis-2-butene and...Ch. 7 - Prob. 61PCh. 7 - (a) Using reactions studied in this chapter, show...Ch. 7 - Prob. 63PCh. 7 - Prob. 64PCh. 7 - 1. Write the structure(s) of the major product(s)...Ch. 7 - Prob. 2LGPCh. 7 - (a) Write the structure of the product(s) formed...Ch. 7 - Prob. 4LGP
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