EBK GET READY FOR ORGANIC CHEMISTRY
EBK GET READY FOR ORGANIC CHEMISTRY
2nd Edition
ISBN: 9780321830555
Author: KARTY
Publisher: VST
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Chapter 13, Problem 13.46P
Interpretation Introduction

Interpretation:

The synthesis of the target molecule from the given starting material using any other compound containing at the most one carbon is to be determined.

Concept introduction:

In order to synthesize the target molecule, we can use the same reactant for the formation of two different precursors.

Alcohols (OH) are treated with phosphorous tribromide (PBr3) for conversion to alkyl bromide. Hence, in this manner, the poor leaving group is converted to a good leaving group.

In Williamson ether synthesis, alcohols are converted to ethers by using a strong base and an alkyl halide. Primary alkyl halides give the best yield.

Terminal alkyne can be deprotonated and converted to alkynide anion by using a strong base like NaH. Alkynide anion acts as a strong nucleophile.

The nucleophilic substitution reaction between alkynide anion and alkyl halide results in the formation of a new C-C bond.

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Done 11:14 ⚫ worksheets.beyondlabz.com 5 (a). Using the peak information you listed in the tables for both structures, assign each peak to that portion of the structure that produces the peak in the NMR spectrum. Draw this diagram on your own sheet of paper and attach the sketch of your drawing to this question. Question 6 5 (b). Using the peak information you listed in the tables for both structures, assign each peak to that portion of the structure that produces the peak in the NMR spectrum. Draw this diagram on your own sheet of paper and attach the sketch of your drawing to this question. Question 7 6. Are there any differences between the spectra you obtained in Beyond Labz and the predicted spectra? If so, what were the differences? <
2. Predict the NMR spectra for each of these two compounds by listing, in the NMR tables below, the chemical shift, the splitting, and the number of hydrogens associated with each predicted peak. Sort the peaks from largest chemical shift to lowest. **Not all slots must be filled** Peak Chemical Shift (d) 5.7 1 Multiplicity multiplate .......... 5.04 double of doublet 2 4.98 double of doublet 3 4.05 doublet of quartet 4 5 LO 3.80 quartet 1.3 doublet 6 Peak Chemical Shift (d) Multiplicity
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