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Q.(a) Arrange the following compounds in the increasing order of their boiling points (1 mark): CH3CHOCH_3CHO, CH3CH2OHCH_3CH_2OH, CH3OCH3CH_3OCH_3, CH3CH2CH3CH_3CH_2CH_3.

(b) What happens when (give equations only) (1 mark each, 1×4=4):
(i) acetaldehyde (CH3CHOCH_3CHO) reacts with HCN;
(ii) propanone reacts with CH3MgICH_3MgI in the presence of H2O/H+H_2O/H^+;
(iii) acetic acid (CH3COOHCH_3COOH) is heated in the presence of a strong dehydrating agent such as P2O5P_2O_5;
(iv) two moles of acetaldehyde (CH3CHOCH_3CHO) condense in the presence of NaOH. OR Write the products of the following reactions (1 mark each, 1×5=5):
(i) acetaldehyde (CH3CHOCH_3CHO) + HO−NH2HO-NH_2 →H+\xrightarrow{H^+} ?;
(ii) CH3COCH3→LiAlH4CH_3COCH_3 \xrightarrow{LiAlH_4} ?;
(iii) acetaldehyde (CH3CHOCH_3CHO) + NaHSO3→NaHSO_3 \rightarrow ?;
(iv) CH3COOH+NaHCO3→CH_3COOH + NaHCO_3 \rightarrow ?;
(v) benzoic acid + NH3→ΔNH_3 \xrightarrow{\Delta} ?
Meghalaya MboseMBOSE Meghalaya Intermediate Board 2021Subjective· 5mImportance★★★★★
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Part (a) orders four similar-mass compounds by boiling point based on their intermolecular forces; part (b) and its OR alternative each give five short named/predicted reactions of carbonyl and carboxylic-acid compounds.

(a) Increasing order of boiling points

All four compounds have similar molecular mass (~44–46 g/mol), so the difference in boiling point comes entirely from the strength of intermolecular forces:

  • CH3CH2CH3CH_3CH_2CH_3 (propane): non-polar, only weak London dispersion forces — lowest bp (about 231 K231\,K).
  • CH3OCH3CH_3OCH_3 (dimethyl ether): has a polar C–O–C but no O–H/N–H bond, so only dipole–dipole + dispersion forces, no hydrogen bonding — next lowest (about 248 K248\,K).
  • CH3CHOCH_3CHO (acetaldehyde): has a strongly polar C=OC=O bond, giving stronger dipole–dipole attraction than the ether — next (about 294 K294\,K).
  • CH3CH2OHCH_3CH_2OH (ethanol): has an −OH-OH group, so molecules hydrogen-bond to each other — by far the strongest force, hence the highest bp (about 351 K351\,K).

CH3CH2CH3<CH3OCH3<CH3CHO<CH3CH2OHCH_3CH_2CH_3 < CH_3OCH_3 < CH_3CHO < CH_3CH_2OH

(b) Reactions (equations only)

(i) Acetaldehyde + HCN (nucleophilic addition of cyanide to the carbonyl carbon, base-catalysed):

CH3CHO+HCN→CH3−CH(OH)−CN (acetaldehyde cyanohydrin)CH_3CHO + HCN \rightarrow CH_3-CH(OH)-CN \ \text{(acetaldehyde cyanohydrin)}

(ii) Propanone + CH3MgICH_3MgI, then H2O/H+H_2O/H^+ (Grignard addition to a ketone, giving a tertiary alcohol on hydrolysis):

CH3COCH3+CH3MgI→(CH3)2C(OMgI)CH3→H2O/H+(CH3)3C−OH (tert-butanol)CH_3COCH_3 + CH_3MgI \rightarrow (CH_3)_2C(OMgI)CH_3 \xrightarrow{H_2O/H^+} (CH_3)_3C-OH\ (\text{tert-butanol})

(iii) Acetic acid heated with P2O5P_2O_5 (intermolecular dehydration to the anhydride):

2CH3COOH→P2O5, Δ(CH3CO)2O (acetic anhydride)+H2O2CH_3COOH \xrightarrow{P_2O_5,\ \Delta} (CH_3CO)_2O\ (\text{acetic anhydride}) + H_2O

(iv) Two moles of acetaldehyde condensed in the presence of NaOH (base-catalysed aldol condensation):

2CH3CHO→dil. NaOHCH3−CH(OH)−CH2−CHO (aldol)→Δ, −H2OCH3−CH=CH−CHO (crotonaldehyde)2CH_3CHO \xrightarrow{dil.\ NaOH} CH_3-CH(OH)-CH_2-CHO\ (\text{aldol}) \xrightarrow{\Delta,\ -H_2O} CH_3-CH=CH-CHO\ (\text{crotonaldehyde})

Alternative (Or):

Five short reactions of acetaldehyde, propanone, acetic acid and benzoic acid with common reagents (hydroxylamine, LiAlH4, bisulphite, bicarbonate, ammonia).

(i) Acetaldehyde + hydroxylamine (nucleophilic addition–elimination, condensation):

CH3CHO+H2N−OH→H+CH3CH=N−OH (acetaldoxime)+H2OCH_3CHO + H_2N-OH \xrightarrow{H^+} CH_3CH=N-OH\ (\text{acetaldoxime}) + H_2O

(ii) Propanone reduced by LiAlH4LiAlH_4 (reduction of a ketone to a secondary alcohol): …

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