આ MCQ મોડ્યુલ આના પર આધારિત છે: Ethers Preparation Reactions and Commercial Uses
Ethers Preparation Reactions and Commercial Uses
આ મૂલ્યાંકન આના પર આધારિત હશે: Ethers Preparation Reactions and Commercial Uses
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Ethers — Preparation, Reactions and Commercial Uses
7.9 Some Commercial Uses of Alcohols
7.9.1 Methanol (wood spirit)
Methanol was once made by destructive distillation of wood — hence the old name "wood spirit". Today it is produced industrially by catalytic hydrogenation of carbon monoxide over a Cu/ZnO/Al₂O₃ catalyst:
Uses: solvent for paints, varnishes and shellac; feedstock for formaldehyde (→ bakelite), acetic acid and methyl tert-butyl ether (petrol additive); antifreeze; emerging as a clean liquid fuel for direct-methanol fuel cells. Toxicity: methanol is metabolised to formaldehyde and formic acid; as little as 10 mL can cause blindness, 30 mL can be fatal.
7.9.2 Ethanol
Made industrially by (i) acid-catalysed hydration of ethylene, and (ii) fermentation of sugars — zymase enzymes of yeast convert glucose into ethanol:
Uses: alcoholic beverages; organic solvent for tinctures and perfumes; industrial feedstock for diethyl ether, ethyl acetate, acetaldehyde; automotive fuel additive (gasohol); hand sanitisers at 60–70% v/v (denatures viral envelope proteins and bacterial membranes). Ordinary ethanol is denatured with methanol or pyridine to make it non-potable for industrial purposes.
7.10 Ethers
7.10.1 Structure Recap
An ether — R–O–R' — has a bent oxygen (C–O–C ≈ 112°) and is sp³-hybridised. Because there is no O–H, ethers cannot hydrogen-bond to themselves; they can, however, accept hydrogen bonds from water. Diethyl ether is therefore slightly soluble in water (≈ 8 g per 100 g at 20 °C) but boils at only 35 °C — lower than an alcohol of the same molar mass.
7.10.2 Preparation of Ethers
(a) Dehydration of an alcohol
Heating ethanol with conc. H₂SO₄ at 413 K forms diethyl ether (condensation — two alcohol molecules + acid); at 443 K the acid drives the reaction further to ethylene + water. So temperature is the key switch between "ether" and "alkene".
The mechanism: one alcohol is protonated, a second alcohol attacks its carbon by SN2 and expels water, giving a protonated ether that deprotonates to the neutral product. This method is practical only for symmetrical ethers of primary alcohols. For 2° and 3° alcohols, elimination to the alkene dominates even at 413 K.
(b) Williamson synthesis
This is the general laboratory method — it works for both symmetrical and unsymmetrical ethers. An alkoxide ion displaces halide from an alkyl halide in an SN2 step:
Because the step is SN2, the alkyl halide partner must be primary — with a 2° or 3° halide the alkoxide acts as a base instead of a nucleophile and elimination (E2) dominates.
7.10.3 Physical Properties of Ethers
- Boiling points much lower than those of isomeric alcohols (dimethyl ether –25 °C vs ethanol 78 °C) because no O–H means no H-bond donation.
- Miscibility with water comparable to that of the isomeric alcohol for low molar mass (ether O accepts an H-bond from water).
- Excellent solvents for Grignard reagents, LiAlH₄ and many organic reactions — inert, volatile and weakly coordinating.
7.10.4 Chemical Reactions of Ethers
(a) Cleavage by HX
Ethers are otherwise inert, but strong hydrogen halides (HI > HBr >> HCl) cleave the C–O–C linkage at high temperature to give an alcohol and an alkyl halide. HI is most reactive because I⁻ is the best nucleophile and HI is the strongest acid. HF does not cleave ethers.
Mechanism & regioselectivity:
- Ether of only 1°/2° alkyl groups: proton adds to ether O; halide attacks by SN2 on the less hindered carbon, expelling the more-substituted alcohol. Example: CH₃–O–C₂H₅ + HI → CH₃I + C₂H₅OH (I⁻ prefers the less hindered methyl).
- Ether with a 3° or benzylic group: protonation then SN1 — the tertiary C–O cleaves to give a stable 3° carbocation and the smaller alcohol; halide then traps the cation. Example: (CH₃)₃C–O–CH₃ + HI → (CH₃)₃C–I + CH₃OH.
- Aryl alkyl ethers (e.g., anisole, C₆H₅–O–CH₃ + HI): cleavage always gives phenol + alkyl halide, never aryl iodide + methanol. Reason: the C(aryl)–O bond has partial double-bond character and cannot undergo SN1 or SN2; only the alkyl–O bond breaks. Product: C₆H₅OH + CH₃I.
(b) Electrophilic aromatic substitution on anisole
The –OCH₃ group is a strong ortho/para director (like –OH) because its oxygen lone pair donates into the ring. Anisole undergoes:
- Halogenation: with Br₂ in ethanoic acid → p-bromoanisole (major) + o-bromoanisole.
- Nitration: with dilute HNO₃ → o- and p-nitroanisole.
- Friedel–Crafts alkylation with R–X / anhyd. AlCl₃ → o/p-alkylanisole.
- Friedel–Crafts acylation with CH₃COCl / AlCl₃ → p-methoxyacetophenone (major).
Worked Examples
Design a Williamson synthesis of tert-butyl methyl ether, (CH₃)₃C–O–CH₃.
Option A: (CH₃)₃C–Br + CH₃O⁻Na⁺ → mostly isobutylene + methanol (E2 on 3° halide). BAD.
Option B: (CH₃)₃C–O⁻K⁺ + CH₃I → (CH₃)₃C–O–CH₃ + KI. SN2 on a 1° halide works cleanly. GOOD.
Write the products when each ether is heated with excess HI: (i) CH₃OCH₃; (ii) CH₃OC(CH₃)₃; (iii) C₆H₅OCH₃.
(i) 1°/1° ether: CH₃OH + CH₃I (SN2). With excess HI, the methanol also converts: two moles CH₃I in total.
(ii) 1°/3° ether: SN1 — I⁻ attaches to the 3° carbon. Products: (CH₃)₃C–I + CH₃OH.
(iii) Aryl alkyl ether: only the alkyl–O bond breaks. Products: C₆H₅OH + CH₃I.
Why does ethanol (b.p. 78 °C) boil ~100 °C higher than dimethyl ether (b.p. –25 °C) although they have the same molecular formula (C₂H₆O)?
Ethanol has an O–H bond → every molecule can donate AND accept H-bonds, forming an extensive network in the liquid. Dimethyl ether has no O–H → it can only accept, not donate, so it cannot self-associate. Breaking pure London-dispersion forces in liquid DME costs far less energy than breaking the H-bonded network of ethanol.
Predict the product(s) when anisole reacts with acetyl chloride in the presence of anhydrous AlCl₃.
Friedel–Crafts acylation. –OCH₃ activates the ring and directs to ortho/para. The bulky acylium ion preferentially enters para to avoid the methoxy group. Major product: p-methoxyacetophenone (4-methoxyacetophenone) with a small amount of the ortho isomer.
For each target ether below, decide which alkoxide + alkyl halide pair would give the highest yield:
- CH₃OCH₂CH₃ (methoxyethane)
- (CH₃)₃COCH₂C₆H₅ (benzyl tert-butyl ether)
- C₆H₅OCH₃ (anisole)
1. Either CH₃O⁻ + C₂H₅–Br or C₂H₅O⁻ + CH₃–I works (both partners 1°); CH₃I is slightly preferred (better leaving group).
2. Put the alkoxide on the tertiary side and the halide on the 1° side: (CH₃)₃C–O⁻Na⁺ + C₆H₅CH₂–Br → target.
3. Phenol is the alkoxide source; methyl must be the halide partner: C₆H₅O⁻Na⁺ + CH₃–I → anisole. An aryl halide would fail (sp² C resists SN2).
Interactive — Ether Cleavage Product Predictor
Pick an ether; the tool tells you the mechanism (SN1/SN2/aryl) and the products with excess HI.
Chapter 7 — Summary
- Alcohols R–OH (sp³ C–O–H), phenols Ar–OH (sp² C–O–H) and ethers R–O–R' (sp³ C–O–C) are the three oxygen functional-group families derived formally from water.
- IUPAC: alcohol = alkaneol; ether = alkoxy-alkane; phenol has its own parent name.
- Alcohols are prepared from alkenes (Markovnikov hydration; anti-Markovnikov hydroboration–oxidation), from aldehydes/ketones/acids/esters (reduction with LiAlH₄, NaBH₄, H₂/Ni), and from Grignard addition to carbonyls.
- Phenols — four routes: chlorobenzene + NaOH (Dow); benzenesulphonic acid + NaOH fusion; diazonium salt + H₂O; cumene + O₂ (industrial).
- Alcohols acidity order: H₂O > 1° > 2° > 3°. Phenols (pKa ≈ 10) are a million times stronger than alcohols because the phenoxide is resonance-stabilised. Electron-withdrawing substituents (–NO₂) raise acidity further (picric acid pKa 0.4).
- Key reactions of alcohols: with Na → alkoxide + H₂; with R'COOH/H₂SO₄ → ester; with HX/PCl₅/SOCl₂ → alkyl halide; dehydration (conc. H₂SO₄ or Al₂O₃) → alkene; oxidation (PCC, K₂Cr₂O₇) → aldehyde/ketone/acid depending on class; dehydrogenation (Cu, 573 K) → carbonyl.
- Key reactions of phenols: with NaOH → phenoxide; with Br₂/H₂O → 2,4,6-tribromophenol; with HNO₃ → nitrophenols and picric acid; Kolbe → salicylic acid; Reimer–Tiemann → salicylaldehyde.
- Ethers are made by alcohol dehydration (413 K) or — better — Williamson (alkoxide + 1° R'–X). They are cleaved by HI/HBr: SN2 on 1°/2° ethers, SN1 on ethers containing a 3° group, and selectively at the alkyl–O bond in aryl alkyl ethers. Anisole undergoes ortho/para electrophilic substitution.
- Methanol: industrial feedstock, solvent, fuel; TOXIC. Ethanol: beverages, solvent, fuel additive, sanitiser.
Keywords grid
Competency-Based Questions — Ethers & Applications
1. The correct reagent mixture to convert anisole into p-methoxyacetophenone is:
2. Which pair of reagents best delivers methyl tert-butyl ether (MTBE) in high yield?
3. True/False: The cleavage of anisole by HI at 373 K gives iodobenzene and methanol.
4. Fill in the blank: Fermentation of glucose is catalysed by the enzyme ________ in yeast.
5. Why do ethers have lower boiling points than alcohols of comparable molar mass but higher solubilities in water than alkanes?
Assertion–Reason Questions
Assertion (A): Williamson synthesis fails when the alkyl halide is tertiary.
Reason (R): A tertiary carbon is too hindered for SN2 attack; alkoxide acts as a base and elimination (E2) dominates.
Assertion (A): In the HI cleavage of an aryl alkyl ether, phenol (not aryl iodide) is always formed.
Reason (R): The C(sp²)–O bond has partial double-bond character due to resonance and resists both SN1 and SN2 cleavage.
Assertion (A): Diethyl ether is a useful solvent for Grignard reactions.
Reason (R): The ether oxygen coordinates the magnesium atom of RMgX and stabilises the reagent without reacting with the carbanion.
Frequently Asked Questions - NCERT Exercises and Solutions: Alcohols, Phenols and Ethers
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