(e) Alcohols

Syllabus
2024
Topic
Level

Learning objectives

Recognise the alcohol functional group

Alcohols contain the hydroxyl functional group OH\ce{-OH}, with the oxygen bonded to a carbon atom and to a hydrogen atom.

In methanol, CHX3OH\ce{CH3OH}, and ethanol, CHX3CHX2OH\ce{CH3CH2OH}, writing OH\ce{OH} at the end makes the functional group visible. A displayed formula must show the separate CO\ce{C-O} and OH\ce{O-H} bonds.

Do not identify any molecule containing oxygen as an alcohol. The required group is OH\ce{-O-H} attached to the carbon framework; a carboxylic acid contains COOH\ce{-COOH} and belongs to a different functional group.

Draw and name the first four alcohols

The required alcohols have an unbranched carbon chain with one terminal OH\ce{-OH} group. Their names end in “ol”.

Carbon atoms Required name Structural formula
1 methanol CHX3OH\ce{CH3OH}
2 ethanol CHX3CHX2OH\ce{CH3CH2OH}
3 propan-1-ol (propanol accepted) CHX3CHX2CHX2OH\ce{CH3CH2CH2OH}
4 butan-1-ol (butanol accepted) CHX3CHX2CHX2CHX2OH\ce{CH3CH2CH2CH2OH}

To draw a displayed formula, join the carbon atoms with single bonds, attach OH\ce{-O-H} to the end carbon, then add hydrogens until every carbon has four bonds, oxygen has two and hydrogen has one.

A displayed formula must show the OH\ce{O-H} bond; writing an unconnected OH label is incomplete. For this objective, propanol means propan-1-ol and butanol means butan-1-ol—not propan-2-ol or butan-2-ol.

Compare the three oxidation routes for ethanol

Ethanol can be oxidised in three required ways: complete combustion, microbial oxidation in air, and heating with acidified potassium dichromate(VI).

Route Conditions / oxidant Main products
complete combustion burn in air or oxygen carbon dioxide and water
microbial oxidation oxygen in air; microorganisms ethanoic acid
laboratory oxidation heat with potassium dichromate(VI) in dilute sulfuric acid ethanoic acid

\ce{C2H5OH + 3O2 -> 2CO2 + 3H2O}

\ce{C2H5OH + O2 -> CH3COOH + H2O}

During oxidation with acidified potassium dichromate(VI), the dichromate colour changes from orange to green. The required acid is dilute sulfuric acid, and the mixture is heated.

Combustion does not produce ethanoic acid: it oxidises ethanol completely to COX2\ce{CO2} and HX2O\ce{H2O}. For the dichromate route, do not replace dilute sulfuric acid with phosphoric acid even if a legacy mark scheme once allowed it.

Compare the two ways to manufacture ethanol

Ethanol is manufactured either by hydrating ethene with steam or by fermenting glucose with enzymes in yeast.

Method Reactants Required conditions
hydration ethene + steam phosphoric acid catalyst; about 300C300\,^{\circ}\mathrm{C}; about 606070atm70\,\mathrm{atm}
fermentation glucose enzymes in yeast; absence of air; optimum temperature about 30C30\,^{\circ}\mathrm{C}

\ce{C2H4 + H2O -> C2H5OH}

\ce{C6H12O6 -> 2C2H5OH + 2CO2}

Hydration produces ethanol as its only product in the equation. Fermentation produces both ethanol and carbon dioxide, so both products and their coefficient 2 must be retained when balancing.

Do not exchange the conditions: phosphoric acid, high temperature and high pressure belong to ethene hydration; yeast enzymes, no air and about 30C30\,^{\circ}\mathrm{C} belong to fermentation.

Explain the conditions needed for fermentation

Fermentation is carried out without air and near the enzymes’ optimum temperature so that glucose is converted to ethanol at a useful rate without losing the desired product.

Condition Why it is needed
absence of air prevents ethanol being oxidised to ethanoic acid and prevents aerobic respiration from replacing ethanol production
about 30C30\,^{\circ}\mathrm{C} gives yeast enzymes a fast working rate without denaturing them
not too cold enzyme-controlled reactions become slow
not too hot enzymes denature, so their active sites no longer catalyse fermentation

temperature too low → insufficient particle movement and slow enzyme activity; optimum temperature → fastest effective enzyme action; temperature too high → enzyme structure changes → fermentation stops

Saying only that ‘yeast dies’ does not explain the temperature condition. The required explanation concerns enzyme activity and denaturation; absence of air is a separate chemical condition.