11.5 Alkenes

Syllabus
0620–2026–2027
Topic
11.5
Level

Learning objectives

Recognise alkenes as unsaturated hydrocarbons

Alkenes are unsaturated hydrocarbons containing a carbon–carbon double covalent bond, C=C.

Term Meaning for an alkene
hydrocarbon contains carbon and hydrogen only
unsaturated contains a C–C bond that is not single
double covalent bond two shared pairs of electrons join the carbon atoms

Ethene, CH₂=CH₂, and propene, CH₃CH=CH₂, are alkenes. The C=C bond is the reactive part of each molecule.

A molecule containing C=O is not thereby an alkene. The defining double bond must be between two carbon atoms.

Manufacture alkenes and hydrogen by cracking

Cracking breaks larger alkane molecules into smaller molecules using a high temperature and a catalyst. The products include alkenes and may include hydrogen and shorter alkanes.

Requirement Role
large alkane feedstock molecule to be split
high temperature supplies energy to break bonds
catalyst speeds the reaction
products smaller alkane(s), alkene(s) and sometimes hydrogen

Example: C₁₀H₂₂ → C₂H₄ + C₈H₁₈. Another possible cracking pattern is an alkane → alkene + hydrogen, provided the equation is balanced.

For a missing product, subtract the atoms already present in the known products from the atoms in the starting alkane, then check that every product is a valid molecule.

Cracking is not fractional distillation: distillation separates existing molecules, while cracking chemically changes large molecules into smaller ones.

Explain why large alkanes are cracked

Large alkane molecules are cracked because smaller hydrocarbons are more useful and often in greater demand, while alkenes are needed as chemical feedstocks.

Product of cracking Why it is wanted
shorter-chain alkanes useful, more volatile fuels with high demand
alkenes reactive feedstocks for addition reactions and addition polymers
hydrogen useful product where the cracking equation produces it

Cracking converts a surplus of less useful large molecules into products whose properties and chemical reactivity better match industrial demand.

Cracking does not create more total carbon or hydrogen atoms; it rearranges the atoms already present into smaller molecules.

Use aqueous bromine to test for unsaturation

Sample Observation after shaking with aqueous bromine Conclusion
unsaturated hydrocarbon orange/brown/yellow → colourless C=C or C≡C present
saturated hydrocarbon no colour change; bromine colour remains no carbon–carbon multiple bond detected

Add aqueous bromine (bromine water) to the sample and observe the initial and final colour. State both the reagent and the observation.

An alkene decolourises bromine because bromine adds across the C=C bond. An alkane has no C=C bond, so there is no rapid reaction under the test conditions.

Do not say bromine water changes from colourless to orange. The positive result is decolourisation: orange/brown/yellow to colourless.

Define an addition reaction

In an addition reaction, two reactant molecules join to form only one product molecule.

For an alkene, the C=C double bond becomes a C–C single bond and new atoms attach to the two carbon atoms.

alkene + small molecule → one saturated product

Do not count catalysts as products. If two different product molecules are formed, the reaction does not fit this addition definition.

Predict the three required alkene addition reactions

Reagent and condition Change across C=C Product family Ethene example
bromine or aqueous bromine Br and Br add dibromoalkane CH₂=CH₂ + Br₂ → CH₂BrCH₂Br
hydrogen with nickel catalyst H and H add alkane CH₂=CH₂ + H₂ → CH₃CH₃
steam with acid catalyst H and OH add alcohol CH₂=CH₂ + H₂O → CH₃CH₂OH

Locate the two carbon atoms of C=C, change the double bond to a single bond, and attach one part of the reagent to each carbon. Keep the original carbon skeleton and check every carbon has four bonds.

With propene, bromine forms 1,2-dibromopropane, CH₃CHBrCH₂Br, and the aqueous bromine is decolourised.

Addition of steam to an unsymmetrical alkene can give positional alcohol isomers. For propene, the syllabus question evidence includes propan-1-ol and propan-2-ol; use an acid catalyst.

Nickel is the catalyst for hydrogen addition; an acid is the catalyst for steam addition. Bromine adds two bromine atoms across C=C rather than replacing a hydrogen.