CHM 102
Synthesis and Reactions of Alcohols & Phenols | General Organic Chemistry
Learn about Synthesis and Reactions of Alcohols & Phenols | General Organic Chemistry in CHM 102. Comprehensive study materials and practice questions.
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Synthesis and Reactions of Alcohols & Phenols | General Organic Chemistry
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Study Notes
CHM 102Introduction to Alcohols and Phenols
- Alcohols are organic compounds characterized by the hydroxyl (-OH) group as their primary functional group.
- Phenols are described as "alcohol-like" compounds where the hydroxyl group is bound directly to a benzene ring.
- Classification is determined by the number of carbon atoms attached to the carbon bearing the -OH group: Primary (1°), Secondary (2°), and Tertiary (3°).
Nomenclature Rules
- IUPAC System: The parent alkane name is modified by removing the final -e and replacing it with the suffix -ol.
- Numbering: The carbon chain must be numbered starting from the end that gives the hydroxyl group the lowest possible number.
- Priority: The hydroxyl group takes precedence over alkenes and other substituents in both naming and numbering priority.
- Polyhydric Alcohols: If a molecule contains two or three -OH groups, the suffixes -diol (e.g., 1,2-ethanediol) or -triol (e.g., 1,2,3-propanetriol) are used.
- Common Names: These are formed by naming the alkyl group followed by the word "alcohol," such as methyl alcohol for methanol.
Physical Properties
- Polarity: Alcohols are the first organic compounds in this study that are polar, unlike non-polar hydrocarbons like alkanes and alkenes.
- Boiling Points and Solubility: Due to their ability to form hydrogen bonds, alcohols have significantly higher boiling points and higher water solubility than hydrocarbons of similar mass.
- Chain Length Effect: Solubility in water decreases as the non-polar carbon chain length increases.
Synthesis and Preparation
- Hydration of Alkenes: Water is added to an alkene in the presence of an acid catalyst, following Markovnikov’s Rule (the hydrogen attaches to the carbon with more hydrogens).
- Grignard Reagents: A versatile method where a Grignard reagent reacts with different carbonyl compounds:
- Formaldehyde yields a primary (1°) alcohol.
- Aldehydes yield a secondary (2°) alcohol.
- Ketones yield a tertiary (3°) alcohol.
- Reduction Reactions:
- Sodium Borohydride (NaBH₄): Reduces aldehydes and ketones to alcohols but does not react with esters or carboxylic acids.
- Catalytic Hydrogenation: Uses H₂ and Raney nickel to reduce carbonyls; note that this will also reduce any carbon-carbon double bonds present.
Key Chemical Reactions
- Oxidation:
- Primary (1°) alcohols can be oxidized to aldehydes using PCC (pyridinium chlorochromate), or further to carboxylic acids using chromic acid.
- Secondary (2°) alcohols are oxidized to ketones.
- Tertiary (3°) alcohols do not oxidize because they lack the necessary hydrogen atoms on the carbonyl carbon.
- The Lucas Test: Uses ZnCl₂ in concentrated HCl to distinguish between alcohol classes based on the speed of an SN1 reaction:
- 3° alcohols react in less than 1 minute.
- 2° alcohols react in 1–5 minutes.
- 1° alcohols react very slowly or not at all.
- Dehydration: Alcohols can lose a molecule of water to form an alkene when treated with acid and heat.
- Esterification: Alcohols react with carboxylic acids to produce sweet-smelling esters.
- Reaction with Active Metals: Metals like Na, Li, and K act as strong bases to deprotonate alcohols, forming alkoxides and liberating hydrogen gas.