Q.Complete the following reactions - [1x5=5]
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Start your 14-day free trial to unlock the full solution →Five standard named/typical reactions of aldehydes and carboxylic acids from the NCERT syllabus (silver-mirror-type oxidation, anhydride formation, cyanohydrin addition, acetal formation, aldol reaction) - or, in the alternative version, explanations of five classic named organic reactions (Cannizzaro, Clemmensen, esterification, Kolbe electrolysis, Hell-Volhard-Zelinsky).
- HCOOH + Ag2O: Formic acid (HCOOH) is unusual among carboxylic acids in having an -H directly attached to the carbonyl carbon (like an aldehyde), so it shows reducing/aldehydic character and readily reduces mild oxidising agents such as Ag2O (Tollens' reagent-type behaviour): HCOOH + Ag2O -> 2Ag(down, mirror) + CO2(g) + H2O. This reaction (giving a silver mirror) is used as a test to distinguish formic acid from other carboxylic acids, which lack this reducing property.
- 2CH3COOH --P2O5, heat-->: Phosphorus pentoxide (P2O5) is a strong dehydrating agent. When acetic acid is heated with P2O5, a molecule of water is eliminated between two molecules of the acid, joining them through an oxygen bridge to form an acid anhydride: 2CH3COOH --P2O5, heat--> (CH3CO)2O (acetic anhydride) + H2O.
- HCHO + HCN: This is a nucleophilic addition reaction typical of aldehydes/ketones. The cyanide ion (CN-, the nucleophile) attacks the electrophilic carbonyl carbon of formaldehyde, and after protonation, a cyanohydrin is formed: HCHO + HCN -> HO-CH2-CN (glycolonitrile / formaldehyde cyanohydrin).
- CH3CHO + 2C2H5OH --dry HCl gas-->: In the presence of dry HCl gas (acid catalyst, and also to remove water), one molecule of an aldehyde reacts with two molecules of an alcohol to form an acetal (a gem-diether), with elimination of one molecule of water: CH3CHO + 2C2H5OH --dry HCl gas--> CH3-CH(OC2H5)2 (acetaldehyde diethyl acetal) + H2O.
- 2CH3CHO --dil. NaOH-->: Acetaldehyde has alpha-hydrogens, so in the presence of a dilute base such as NaOH, one molecule (as its enolate) acts as a nucleophile and attacks the carbonyl carbon of a second molecule of acetaldehyde. This is the base-catalysed aldol addition reaction, giving beta-hydroxy aldehyde: 2CH3CHO --dil. NaOH--> CH3-CH(OH)-CH2-CHO (3-hydroxybutanal, 'aldol'). OR (alternative - explain the named reactions):
(a) Cannizzaro reaction: Aldehydes that have no alpha-hydrogen atom (i.e. cannot form an enolate, e.g. HCHO, C6H5CHO, and other aromatic/non-enolisable aldehydes) undergo self-oxidation-reduction (disproportionation) when treated with concentrated alkali (NaOH/KOH). One molecule of the aldehyde is reduced to the corresponding primary alcohol while a second molecule is simultaneously oxidised to the corresponding carboxylate (acid salt). Example: 2HCHO + NaOH(conc.) -> CH3OH + HCOONa.
(b) Clemmensen reduction: This is a method of reducing the carbonyl group (>C=O) of an aldehyde or a ketone completely to a methylene group (-CH2-), converting it into the corresponding hydrocarbon. The reagent used is zinc amalgam, Zn(Hg), together with concentrated hydrochloric acid (HCl). Example: R-CO-R' + 4[H] --Zn(Hg)/conc. HCl--> R-CH2-R' + H2O. It is particularly useful for reducing carbonyl compounds that are stable to acidic conditions (an alternative, base-stable method being the Wolff-Kishner reduction).
(c) Esterification: A carboxylic acid reacts with an alcohol in the presence of a small amount of a strong mineral acid (usually concentrated H2SO4, or dry HCl gas) as a catalyst and dehydrating agent, to form an ester with elimination of a molecule of water. This is an equilibrium (reversible) reaction. General equation: R-COOH + R'-OH <=> R-CO-O-R' (ester) + H2O.
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