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Thiols are prepared using the hydrosulfide anion as a nucleophile in a nucleophilic substitution reaction with alkyl halides. For instance, bromobutane reacts with sodium hydrosulfide to give butanethiol.

Figure1

This reaction fails because the thiol product can undergo a second nucleophilic substitution reaction in the presence of an excess alkyl halide to generate a sulfide as a by-product.

Figure2

This limitation can be overcome by using thiourea as the nucleophile. The reaction first produces an alkyl isothiourea salt as an intermediate, which forms thiol as a final product upon hydrolysis with an aqueous base.

Figure3

Thiols can readily oxidize to disulfides, sulfinic acid, and sulfonic acid. The oxidation of thiols to disulfides can even occur in the presence of atmospheric air. Thus, the high susceptibility of thiols to undergo air oxidation necessitates the storage of thiols in an inert atmosphere. Oxidation of thiols to disulfides can also be accomplished using reagents like molecular bromine or iodine in the presence of a base. Disulfides, however, can be easily reduced back to thiols by treatment with reducing agents such as HCl in the presence of zinc. Notably, oxidation of thiols to disulfides is a redox reaction. The interconversion between thiols and disulfides is ascribed to the bond strength of the S–S bond, which is approximately half the strength of other covalent bonds.

Tags
ThiolNucleophilic SubstitutionHydrosulfide AnionAlkyl HalideThioureaAlkyl Isothiourea SaltDisulfideSulfinic AcidSulfonic AcidOxidationReductionRedox ReactionS S Bond

Aus Kapitel 11:

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11.14 : Preparation and Reactions of Thiols

Ethers, Epoxides, Sulfides

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11.1 : Structure and Nomenclature of Ethers

Ethers, Epoxides, Sulfides

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11.2 : Physical Properties of Ethers

Ethers, Epoxides, Sulfides

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11.3 : Ethers from Alcohols: Alcohol Dehydration and Williamson Ether Synthesis

Ethers, Epoxides, Sulfides

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11.4 : Ethers from Alkenes: Alcohol Addition and Alkoxymercuration-Demercuration

Ethers, Epoxides, Sulfides

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11.5 : Ethers to Alkyl Halides: Acidic Cleavage

Ethers, Epoxides, Sulfides

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11.6 : Autoxidation of Ethers to Peroxides and Hydroperoxides

Ethers, Epoxides, Sulfides

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11.7 : Crown Ethers

Ethers, Epoxides, Sulfides

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11.8 : Structure and Nomenclature of Epoxides

Ethers, Epoxides, Sulfides

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11.9 : Preparation of Epoxides

Ethers, Epoxides, Sulfides

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11.10 : Sharpless Epoxidation

Ethers, Epoxides, Sulfides

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11.11 : Acid-Catalyzed Ring-Opening of Epoxides

Ethers, Epoxides, Sulfides

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11.12 : Base-Catalyzed Ring-Opening of Epoxides

Ethers, Epoxides, Sulfides

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11.13 : Structure and Nomenclature of Thiols and Sulfides

Ethers, Epoxides, Sulfides

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11.15 : Preparation and Reactions of Sulfides

Ethers, Epoxides, Sulfides

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