Alkene Bonding
A concise revision guide to alkene structure, carbon-carbon double bonds, sigma bonds, pi bonds and why alkenes are more reactive than alkanes.
GCSE Recap: Shared Pairs of Electrons
Three quick questions on single and double covalent bonds before you look inside the C=C bond.
What Makes an Alkene Unsaturated?
Alkenes are hydrocarbons described as unsaturated. This means they do not contain the maximum possible number of hydrogen atoms.
The key structural feature of an alkene is at least one carbon-carbon double bond, written as C=C. For alkenes with one double bond and no rings, the general formula is CnH2n.
Small alkenes include ethene, propene and butene. In longer alkenes, the position of the double bond can change, producing positional isomers such as but-1-ene and but-2-ene.
Key idea: An alkene must contain a C=C double bond, and this double bond is responsible for the characteristic chemistry of alkenes.
Alkenes and positional isomers
Shows unsaturation, the C=C bond, CnH2n, and how butene can exist as but-1-ene or but-2-ene.
Quick Check: Formulae and Positional Isomers
Apply the general formula to alkenes that are not named on this page.
Quick Check: A Ring as Well as a Double Bond
Work out how the general formula changes when the alkene is cyclic.
The Carbon-Carbon Double Bond
A carbon-carbon double bond is made from two different covalent bonds: one sigma, σ, bond and one pi, π, bond.
The sigma bond forms first and lies directly between the two carbon nuclei. The pi bond forms from sideways overlap of p orbitals, giving electron density above and below the plane of the molecule.
The pi bond is more exposed than the sigma bond. This creates a region of high electron density that can attract electron-deficient species called electrophiles.
Exam focus: When explaining alkene reactivity, link the exposed pi bond to high electron density and attraction to electrophiles.
The C=C double bond contains one sigma bond and one pi bond, with the pi bond forming above and below the molecular plane.
Quick Check: Count the σ and π Bonds
Count every bond in the molecule shown, remembering what each double bond contains.
Formation of the Sigma Bond
When two carbon atoms form a double bond, each carbon uses one sp2 hybrid orbital to overlap directly with the other carbon atom.
This direct head-on overlap produces a strong carbon-carbon sigma bond. The electron density is concentrated between the two nuclei, so the sigma bond lies along the straight line joining the nuclei.
A single sigma bond allows free rotation around the bond axis. However, in a C=C double bond, this rotation is restricted because the pi bond must also be maintained.
Remember: Sigma bonds are formed by direct overlap along the internuclear axis.
Direct head-on overlap places electron density between the nuclei, forming the first bond in the carbon-carbon double bond.
Quick Check: Which Bond Can Rotate?
Decide where rotation is possible in two molecules that are not on this page.
σ Bonding Orbital
A visual model of a sigma (σ) bonding orbital formed by the head-on overlap of two atomic orbitals. Electron density is concentrated along and between the two nuclei.
Formation of the Pi Bond
After the sigma bond forms, each carbon retains one unhybridised p orbital perpendicular to the plane of the molecule.
The pi, π, bond forms when these p orbitals overlap sideways. This produces regions of electron density above and below the line joining the two carbon nuclei.
Because sideways overlap is less direct than sigma overlap, the pi bond is weaker than the sigma bond. The pi bond also prevents free rotation around the C=C bond.
Pi bond: A covalent bond formed by sideways overlap of p orbitals, with electron density above and below the internuclear axis.
Formation of the π bond
Sideways p-orbital overlap produces electron density above and below the C-C bond axis, restricting rotation and increasing reactivity.
Hybridisation of Carbon: sp³, sp² and sp Orbitals
Drag to rotate, scroll or pinch to zoom. Switch between the three states to see how mixing the 2s and 2p orbitals changes the shape around the carbon nucleus, and which 2p orbitals are left unhybridised.
sp³ hybridisation
© Dr. Mohammed Al-Fatah – onlinelearningsystem.net
Quick Check: Explain the Bond Enthalpy Data
Write a short explanation, then compare it with the mark points and the model answer.
π Bonding Orbital
A visual model of a pi (π) bonding orbital formed by the sideways overlap of two p orbitals. Electron density is concentrated in two lobes above and below the internuclear axis. The red plane marks the nodal plane where electron density is zero.
A Centre of High Electron Density
AQA describes the C=C double bond as a centre of high electron density. Four electrons are concentrated between the two carbon atoms: two in the σ bond and two in the π bond that sits above and below the plane of the molecule.
This exposed, electron-rich region is what makes alkenes reactive. Species that are short of electrons, called electrophiles, are attracted to the π bond and accept a pair of electrons from it. That is the starting point of every electrophilic addition reaction in 3.3.4.2.
| Feature of the C=C bond | What it means | Consequence |
|---|---|---|
| Double covalent bond | One σ bond and one π bond between the carbon atoms | Alkenes are unsaturated hydrocarbons |
| Centre of high electron density | Four bonding electrons held between two nuclei | Attracts electrophiles such as Hδ+ in HBr |
| π bond above and below the plane | Sideways overlap of p orbitals | Restricted rotation and E-Z isomerism |
Exam sentence: Alkenes are unsaturated hydrocarbons. The C=C double bond is a centre of high electron density, so it attracts electrophiles and undergoes addition reactions.
Comparing Sigma and Pi Bonds
Exam questions often test whether you can distinguish sigma bonding from pi bonding and connect this bonding to alkene reactivity.
| Feature | Sigma bond | Pi bond |
|---|---|---|
| How it forms | Direct head-on orbital overlap | Sideways overlap of p orbitals |
| Electron density | Between the two nuclei | Above and below the molecular plane |
| Effect in alkenes | Forms the first bond between the carbon atoms | Creates an exposed electron-rich region that reacts with electrophiles |
Quick Check: σ and π Bonds in Propene
In each round, pick the one statement about propene that is accurate.
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Some ionic radii are shown.
| Ion | Ionic radius / nm |
|---|---|
| Na+ | 0.102 |
| K+ | 0.138 |
| F− | 0.133 |
| Cl− | 0.180 |
Which compound has the strongest ionic bonding?
Explain why the metallic bonding in magnesium is much stronger than that in sodium.
Copyright notice: This OLS revision content, including the explanations, layout, diagrams, tables and embedded learning structure, is authored for Online Learning System by Dr. Mohammed Al-Fatah. It may not be copied, reproduced, redistributed or adapted without written permission.
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