Aromatic chemistry - AL only (3.3.10)

The structure and bonding of benzene, and electrophilic substitution reactions of aromatic molecules.
6 min

Benzene is a planar molecule with six carbon atoms in a hexagonal ring, each with one bonded hydrogen atom.

A diagram illustrating the conversion of a substituted benzene ring, marked with a red 'X', to a benzene ring without substitutions, indicated by an arrow between the two structures.

All the carbon to carbon bonds in benzene are equivalent; they are the same length and the same strength.

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Experimental evidence led to the evolution of the delocalised model for the structure of benzene.

single bonds are longer than double bonds. If the Kekulé model was correct, with alternate single and double bonds, then benzene would show two different bond lengths and be an irregular hexagon.

A diagram comparing the bond lengths of different carbon compounds: C-C bond in alkane (0.154 nm), C-C bond in benzene (0.140 nm), and C=C bond in alkene (0.134 nm), with a ruler on the left for scale.

X-ray crystallography shows the measured bond length in benzene is between the bond lengths of carbon-carbon single, and carbon-carbon double bonds. This gives benzene a regular hexagonal shape.

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The current model of benzene is the delocalised model. It describes of a cyclic molecule, in which each carbon atom makes three -bonds.

The remaining electron, in each carbon atom’s p orbital becomes delocalised, giving rise to a π-system of six electrons that are shared equally between all carbon atoms in the ring.

Illustration comparing the Kekulé model and the delocalised model of benzene. The left side shows the Kekulé model with alternating single and double bonds between carbon atoms, while the right side depicts the delocalised model with a circular representation of delocalised pi bonds. An arrow indicates the transition between the two models, with annotations explaining the overlap of p-orbitals and the delocalisation of pi bonds.

The six delocalised electrons being shared among all six carbon atoms gives the benzene ring great stability.

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The lower than predicted enthalpy of hydrogenation of benzene gives evidence of the delocalised model of benzene.

The enthalpy of hydrogenation for the conversion of cyclohexene to cyclohexane by saturating its one double bond is .

As the Kekulé model of benzene has three double bonds, then theoretically the hydrogenation of 1,3,5-cyclohexatriene () will produce

This is visualised in the enthalpy profile diagram below.

A diagram illustrating the enthalpy changes associated with the conversion of cyclohexene to cyclohexane and the stability of benzene compared to its Kekulé structure. The vertical axis represents enthalpy in kJ mol-1, showing values for cyclohexene, cyclohexane, and theoretical and actual values for benzene. Annotations highlight that actual benzene is 152 kJ mol-1 more stable than the Kekulé structure.

In experimental results, benzene shows an enthalpy of hydrogenation of

This means less energy is released than expected, making benzene more stable than the theoretical molecule 1,3,5-cyclohexatriene.

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Alkenes readily undergo bromination via electrophilic addition, whereas benzene reacts via electrophilic substitution and requires the presence of a halogen carrier catalyst.

A comparative table showing the reactivity of Cyclohexene and Benzene. The table includes sections on delocalisation, electronic density, and the ability to polarise the electrophile, with specific details for each compound.

Bromine can act as an electrophile; it is attracted to, and will be polarised by, parts of molecules that have high electron densities forming a dipole. In an alkene, the -electrons in the double bond are localised between the two carbon atoms. This results in high electron density, capable of polarising the bromine molecule and creating an electrophile.

In contrast, benzene’s -electrons are delocalised across the ring. This reduces the electron density of any given region of the molecule relative to an alkene. Benzene is therefore less able to polarise bromine and a halogen carrier is required to create the electrophile.

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The lack of reaction with bromine water gives evidence of the delocalised model of benzene.

Alkenes readily undergo electrophilic addition reactions. Alkenes readily react with orange bromine water at room temperature causing it to decolourise. This is a common test for alkenes.

A test tube containing a brown liquid labeled 'Benzene' with a note indicating 'No change to bromine water.' The test tube is capped and shows a clear separation between the liquid and the air above.

According to the Kekulé model, benzene has three double bonds so should readily decolourise bromine water giving the positive result for alkenes.

In reality, benzene is highly resistant to such addition reactions. When benzene is shaken with bromine water, the solution remains orange. This indicates that benzene does not contain isolated carbon-carbon double bonds.

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The delocalised electron ring in benzene is very stable.

If electrophiles were to add onto benzene the delocalised ring would become permanently disrupted.

A diagram illustrating two chemical reactions involving a benzene ring. The top section shows a nucleophilic addition reaction, where a nucleophile (Nu-) adds to the benzene, resulting in a new compound. The bottom section depicts a nucleophilic substitution reaction, where a nucleophile (Nu-) replaces a hydrogen atom on the benzene ring, forming a different compound. Labels indicate 'addition' and 'substitution' for each reaction type.

Aromaticity is lost in the addition product but not in the substitution product.

In substitution reactions, the delocalized system is restored in the product. This makes electrophilic substitution reactions favourable over addition reactions.

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In an electrophilic substitution reaction, one of the hydrogen atoms in the benzene ring is replaced by an electrophile, E, which is an electron pair acceptor.

Chemical reaction diagram showing the interaction of a hydrogen atom (H) with an electron (E+) resulting in the formation of a benzene ring and a proton (H+).

Monosubstitution is when a single hydrogen atom from the benzene ring is replaced.

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Nitration introduces a (nitro) group to the benzene ring.

Nitration reactions are carried out using concentrated nitric acid with a concentrated sulfuric acid catalyst. These conditions are required to generate the electrophile, (the nitronium ion).

A table outlining the reagents and conditions for a chemical reaction, including concentrated nitric acid and sulfuric acid, the electrophile as nitronium ion, the formation of the electrophile, the overall equation for the reaction, and the regeneration of the catalyst.
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Nitration of aromatic compounds is described in three main steps.

Step 1 – generating the electrophile, :

Overall reaction:

Step 2- electrophilic substitution:

A chemical reaction diagram illustrating the electrophilic aromatic substitution of a benzene ring with a nitro group (NO2). The process shows the initial attack of the nitronium ion on the benzene, the formation of a sigma complex, and the final product with the nitro group attached and a proton (H+) released.
  • Ensure the curly arrow moves from the inner ring to the electrophile.
  • The intermediate must have a “horseshoe” of electrons extending to the positions either side of the site of substitution; positions 2–6.
  • The intermediate has a positive charge, sitting within the mouth of the horseshoe.
  • Show recovery an electron pair to restore aromaticity. This arrow goes from the bond of the ring hydrogen to the gap in the horseshoe, with the loss of .

Step 3 – regeneration of the catalyst:

The proton released to complete this reaction returns to the reaction mixture resulting in no net change to the amount of present; the sulfuric acid is catalytic.

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Nitration of arenes is an important industrial process and is required for the manufacture of explosives and aromatic amines, which can be synthesised into dyes.

An illustration showing a blue bottle labeled 'AZODYE' on the left and a stick of dynamite with a lit fuse on the right, symbolizing contrasting concepts.
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Halogenation introduces a halogen atom, often represented as .

A ‘halogen carrier’ such as or is used as a catalyst in these reactions. It reacts with a halogen molecule to produce the electrophile, .

A table summarizing chemical reactions involving chlorination and bromination of hydrocarbons. It includes sections for reagents and conditions, electrophiles, electrophile formation, overall equations, and catalyst regeneration.
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Acylation introduces an acyl group, , to the benzene ring.

Acylation is carried out using an acyl chloride in the presence of a halogen carrier or .

A table summarizing a chemical reaction process, including reagents and conditions (RCOCl and AlCl3, reflux), the electrophile (RC+O, acylium ion), the formation of the electrophile, the overall reaction equation, and the regeneration of the catalyst.

This type of reaction is known as a Friedel-Crafts acylation. These reactions are useful in organic synthesis because they enable the formation of new bonds.

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Acylation of aromatic compounds is described in three main steps.

Step 1 – Generating the electrophile: from an acyl chloride

The reaction occurs in anhydrous conditions, under reflux.

Step 2 -electrophilic substitution:

Chemical reaction diagram illustrating the electrophilic aromatic substitution of a methyl group on a benzene ring, showing the formation of a carbocation intermediate and the final product with the release of a proton.
  • Ensure the curly arrow moves from the inner ring to the electrophile.
  • The intermediate must have a “horseshoe” of electrons extending to the positions either side of the site of substitution; positions 2–6.
  • The intermediate has a positive charge, sitting within the mouth of the horseshoe.
  • Show recovery of an electron pair to restore aromaticity. This arrow goes from the bond of the ring hydrogen to the gap in the horseshoe, with the loss of .

Step 3 – regeneration of the catalyst:

This is a very useful reaction for creating a carbon-carbon bond between an arene ring and a carbonyl group.

The product is an aromatic ketone.

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