OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th
OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th
9th Edition
ISBN: 9781305671874
Author: John E. McMurry
Publisher: Cengage Learning
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NMR Spectroscopy
NMR stands for Nuclear Magnetic Resonance in which the study of different molecules is done based on the interaction of radiofrequency electromagnetic radiations with the nuclei of molecules placed in a strong magnetic field. A precise study of spectra o…
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Chapter 17.SE, Problem 55AP

A compound of unknown structure gave the following spectroscopic data:

Mass spectrum: M+=88.1

IR: 3600 cm-1

1ΗNMR: 1.4 δ (2 H, quartet, J=7 Hz); 1.2 δ (6H, singlet): 1.0 δ (1 H, singlet); 0.9 δ (3 H, triplet, J=7 Hz)

13CNMR: 74, 35, 27, 25 δ

(a) Assuming that the compound contains C and H but may or may not contain O, give three possible molecular formulas

(b) How many protons (H) does the compound contain?

(c) What functional groups(s) does the compound contain?

(d) How many carbons does the compound contain?

(e) What is the molecular formula of the compound?

(f) What is the structure of the compound?

(g) Assign peaks in the molecule’s 1HNMR spectrum corresponding to specific protons.

Expert Solution
Check Mark
Interpretation Introduction

a) Three molecular formulas possible for the compound are to be given assuming that the compound contains C and H but may or may not contain oxygen.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600 cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

a) Three molecular formulas possible for the compound assuming that the compound contains C and H but may or may not contain oxygen.

Answer to Problem 55AP

a) Three molecular formulas possible for the compound assuming that the compound contains C and H and O are C5H12O, C4H8O2 and C3H4O3.

Explanation of Solution

a) The IR absorption at 3600cm-1 indicates the presence of an alcoholic group in the compound. Hence assuming the compound contains C, H and O, three possible formulas are possible for the compound with molecular mass 88. They are C5H12O, C4H8O2 and C3H4O3.

Conclusion

Three molecular formulas possible for the compound assuming that the compound contains C and H but may or may not contain oxygen are C5H12O, C4H8O2 and C3H4O3.

Expert Solution
Check Mark
Interpretation Introduction

b) The number of protons in the compound is to be given.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600 cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

b) The number of protons in the compound.

Answer to Problem 55AP

b) The compound has 12 protons.

Explanation of Solution

b) IN 1HNMR spectrum contain peaks accounting for the absorption for 12 protons in the molecule.

Conclusion

b) The compound has 12 protons.

Expert Solution
Check Mark
Interpretation Introduction

c) The functional group(s) present in the compound is/are to be given.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

c) The functional group(s) present in the compound.

Answer to Problem 55AP

c) The functional group in the compound is –OH (alcohol).

Explanation of Solution

c) In 13HNMR only four signals are observed. But 12 protons could not be accommodated on four carbons. At least five carbons are required. This justified by the 1HNMR spectrum which an absorption integrating to six protons present on two equivalent carbons. Hence five carbons are present in the molecule.

Conclusion

c) The functional group in the compound is –OH (alcohol).

Expert Solution
Check Mark
Interpretation Introduction

d) The number of carbons in the compound is to be given.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

d) The number of carbons in the compound.

Answer to Problem 55AP

d) The compound has 5 carbons.

Explanation of Solution

d) Its molecular formula has to be C5H12O as it is a five carbon alcohol with 12 hydrogen atoms.

Conclusion

d) The compound has 5 carbons.

Expert Solution
Check Mark
Interpretation Introduction

e) Molecular formula of the compound is to be given.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

e) Molecular formula of the compound.

Answer to Problem 55AP

e) Molecular formula of the compound is C5H12O.

Explanation of Solution

e) The six proton singlet at 1.2 δ can be attributed to two methyl groups attached to a carbon without any proton. The two proton triplet at 1.4 δ can be assigned to CH2 attached to a methyl which gives a triplet at 0.9 δ. The one proton singlet at 1.0 δ is due to the hydroxyl proton.

Conclusion

e) Molecular formula of the compound is C5H12O.

Expert Solution
Check Mark
Interpretation Introduction

f) The structure of the compound is to be given.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To give:

f) The structure of the compound.

Answer to Problem 55AP

f) The structure of the compound is

OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th, Chapter 17.SE, Problem 55AP , additional homework tip 1

Explanation of Solution

f) Thus the structure of the alcohol is

OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th, Chapter 17.SE, Problem 55AP , additional homework tip 2

Conclusion

The structure of the compound is

OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th, Chapter 17.SE, Problem 55AP , additional homework tip 3

Expert Solution
Check Mark
Interpretation Introduction

g) The peaks in the 1HNMR of the molecule are to be assigned to specific protons.

Interpretation:

A compound has the spectral data:

Mass spectrum: M+=88.1; IR=3600cm-1;

1HNMR: 1.4 δ (2H, quartet, J=7Hz); 1.2 δ (6H, singlet); 1.0 δ (1H, singlet); 0.9 δ (3H, triplet, J=7Hz)

13CNMR: 74, 35, 27, 25 δ

Concept introduction:

Molecular ion peak in the mass spectrum gives an idea about the relative molecular mass of the compound. From the molecular mass and knowing the atomic masses of C, H and O the possible molecular formulas for the compound can be arrived.

In IR the O-H stretching of alcohols and phenols are observed in the range 3200-3550 cm-1. In 1HNMR spectrum, the alcoholic proton absorption occurs in the range 3.4 δ - 4.5 δ while that of phenolic proton occur in the range 3.0 to 8.0. The absorption due to 10 alkyl group (CH3) is seen around 0.7 δ - 1.3 δ, that due to a 20 alkyl group (CH2) is seen around 1.2 δ - 1.6 δ while that due to 30 alkyl group (CH) is seen around 1.4 δ - 1.8 δ The multiplicity of a signal gives an idea about the protons present in the adjacent carbons.

In 13CNMR spectrum, the carbon bonded to –OH absorb in the range 50-80 δ. The primary alkyl carbon absorb in the range 10-15 δ, a secondary alkyl radical in the range 16-25 δ while a tertiary alkyl in the range 25-35 δ.

To assign:

g) The peaks in the 1HNMR of the molecule to specific protons.

Answer to Problem 55AP

g) 1.2 δ (6H, singlet) given by protons marked as ‘a’.

1.4 δ (2H, quartet, J=7Hz) given by protons marked as ‘b’.

0.9 δ (3H, triplet, J=7Hz) given by protons marked as ‘c’.

1.0 δ (1H, singlet) given by proton marked as‘d’.

Explanation of Solution

g) 1.2 δ (6H, singlet) given by protons marked as ‘a’.

1.4 δ (2H, quartet, J=7Hz) given by protons marked as ‘b’.

0.9 δ (3H, triplet, J=7Hz) given by protons marked as ‘c’.

1.0 δ (1H, singlet) given by proton marked as‘d’.

Conclusion

g) 1.2 δ (6H, singlet) given by protons marked as ‘a’.

1.4 δ (2H, quartet, J=7Hz) given by protons marked as ‘b’.

0.9 δ (3H, triplet, J=7Hz) given by protons marked as ‘c’.

1.0 δ (1H, singlet) given by proton marked as‘d’.

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Chapter 17 Solutions

OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card for McMurry's Organic Chemistry, 9th

Ch. 17.1 - Give IUPAC names for the following compounds:Ch. 17.1 - Prob. 2PCh. 17.2 - The following data for isomeric four-carbon...Ch. 17.2 - Rank the following substances in order of...Ch. 17.2 - Prob. 5PCh. 17.3 - Prob. 6PCh. 17.4 - What reagent would you use to accomplish each of...Ch. 17.4 - Prob. 8PCh. 17.5 - Prob. 9PCh. 17.5 - Prob. 10P
Ch. 17.5 - Use the reaction of a Grignard reagent with a...Ch. 17.6 - How would you carry out the following...Ch. 17.6 - What products(s) would you expect from dehydration...Ch. 17.7 - What alcohols would give the following products on...Ch. 17.7 - What products would you expect from oxidation of...Ch. 17.8 - TMS ethers can be removed by treatment with...Ch. 17.9 - Show the mechanism for the reaction of...Ch. 17.11 - Prob. 18PCh. 17.11 - When the 1HNMR spectrum of an alcohol is run in...Ch. 17.SE - Give IUPAC names for the following compounds:Ch. 17.SE - Draw the structure of the carbonyl compound(s)...Ch. 17.SE - Prob. 22VCCh. 17.SE - Prob. 23VCCh. 17.SE - Name and assign R or S stereochemistry to the...Ch. 17.SE - Evidence for the intermediate carbocations in the...Ch. 17.SE - Acid-catalyzed dehydration of 2,...Ch. 17.SE - Prob. 27MPCh. 17.SE - Treatment of the following epoxide with aqueous...Ch. 17.SE - Prob. 29MPCh. 17.SE - Prob. 30MPCh. 17.SE - Identify the type of substitution mechanism (SN1,...Ch. 17.SE - The conversion of 3 alcohols into alkenes under...Ch. 17.SE - Prob. 33MPCh. 17.SE - The trimethylsilyl (TMS) protecting group is one...Ch. 17.SE - When the alcohol below is treated with POCI3 and...Ch. 17.SE - Phenols generally have lower pKa’s than...Ch. 17.SE - Give IUPAC names for the following compounds:Ch. 17.SE - Draw and name the eight isomeric alcohols with...Ch. 17.SE - Prob. 39APCh. 17.SE - Named bombykol, the sex pheromone secreted by the...Ch. 17.SE - Carvacrol is a naturally occurring substance...Ch. 17.SE - What Grignard reagent and what carbonyl compound...Ch. 17.SE - What carbonyl compounds would you reduce to...Ch. 17.SE - What carbonyl compounds might you start with to...Ch. 17.SE - Prob. 45APCh. 17.SE - What products would you obtain from reaction of...Ch. 17.SE - Prob. 47APCh. 17.SE - How would you prepare the following compounds from...Ch. 17.SE - Prob. 49APCh. 17.SE - What products would you expect to obtain from...Ch. 17.SE - Prob. 51APCh. 17.SE - Propose structures for alcohols that have the...Ch. 17.SE - Propose a structure consistent with the following...Ch. 17.SE - The 1HNMR spectrum shown is that of...Ch. 17.SE - A compound of unknown structure gave the following...Ch. 17.SE - Propose a structure for a compound C15H24O that...Ch. 17.SE - Prob. 57APCh. 17.SE - Prob. 58APCh. 17.SE - Rank the following substituted phenols in order of...Ch. 17.SE - Benzvl chloride can be converted into benzaldehvde...Ch. 17.SE - Prob. 61APCh. 17.SE - Prob. 62APCh. 17.SE - Prob. 63APCh. 17.SE - Prob. 64APCh. 17.SE - Prob. 65APCh. 17.SE - Prob. 66APCh. 17.SE - Dehydration of trans-2-methylcyclopentanol with...Ch. 17.SE - 2, 3-Dimethyl-2, 3-butanediol has the common name...Ch. 17.SE - As a rule, axial alcohols oxidize somewhat faster...Ch. 17.SE - Prob. 70APCh. 17.SE - A problem often encountered in the oxidation of...Ch. 17.SE - Identify the reagents a-f in the Following scheme:Ch. 17.SE - Prob. 73APCh. 17.SE - Prob. 74APCh. 17.SE - Compound A, C8H10O, has the IR and 1H NMR spectra...Ch. 17.SE - Prob. 76APCh. 17.SE - Prob. 77AP
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