Organic Chemistry: Principles and Mechanisms (Second Edition)
Organic Chemistry: Principles and Mechanisms (Second Edition)
2nd Edition
ISBN: 9780393663556
Author: Joel Karty
Publisher: W. W. Norton & Company
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Chapter 12, Problem 12.12YT
Interpretation Introduction

Interpretation:

To draw the alcohol that is produced on treatment with a basic solution of H2O2.

Concept introduction:

An alkene that has undergone hydroboration treatment with a basic solution of H2O2 produces alcohol. Under basic conditions, there is an equilibrium amount of deprotonated peroxide, HOO-, called the hydroperoxide ion. The mechanism begins with coordination of HOO- to the electron-deficient B atom of the trialkylborane, thereby producing an unstable tetrahedral intermediate. In Step 2, the breaking of a weak peroxide (O-O) bond drives a 1, 2-alkyl shift that yields a borate ester. This pair of steps occurs twice (Steps 3–6), resulting in a trialkylborate ester. In Step 7, hydroxide anion (HO-) coordinates to the B atom of the trialkylborate ester, and in Step 8, heterolysis occurs to liberate an alkoxide anion (RO-) leaving group. In Step 9, the strongly basic alkoxide anion gains a proton from H2O to produce the first equivalent of the final alcohol. This trio of steps is then repeated twice.

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Which alcohols can be prepared as a single product by hydroboration– oxidation of an alkene? Which alcohols can be prepared as a single product by the acid-catalyzed addition of H2O to an alkene?
Which alcohols can be prepared as a single product by hydroboration–oxidation of an alkene? Which alcohols can be prepared as a singleproduct by the acid-catalyzed addition of H2O to an alkene?
Alkenes can be converted to alcohols by reaction with mercuric acetate to form a β-hydroxyalkylmercury(II) acetate compound, a reaction called oxymercuration. Subsequent reduction with NaBH4 reduces the C–Hg bond to a C–H bond, forming the alkyl alcohol, a reaction called demercuration. Draw the structures of the Hg-containing compound(s) and the final alcohol product(s) formed in the following reaction sequence, omitting byproducts. If applicable, draw hydrogen at a chirality center and indicate stereochemistry via wedge-and-dash bonds.

Chapter 12 Solutions

Organic Chemistry: Principles and Mechanisms (Second Edition)

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