SlideShare a Scribd company logo
1 of 34
Chemistry of Benzene:
Electrophilic Aromatic
Substitution
Substitution Reactions of Benzene
and Its Derivatives
 Benzene is aromatic: a cyclic conjugated

compound with 6 π electrons
 Reactions of benzene lead to the retention of the
aromatic core

2
Electrophilic Aromatic Bromination
 Benzene’s π electrons participate as a Lewis base in






reactions with Lewis acids
The product is formed by loss of a proton, which is replaced
by bromine
FeBr3 is added as a catalyst to polarize the bromine reagent
In the first step the π electrons act as a nucleophile toward Br2
(in a complex with FeBr3)
This forms a cationic addition intermediate from benzene and
a bromine cation
The intermediate is not aromatic and therefore high in energy

3
Formation of Product from
 The cationic addition intermediate
Intermediate
transfers a proton to FeBr4- (from Br- and
FeBr3)

 This restores aromaticity (in contrast

with addition in alkenes)

4
Other Aromatic Halogenations


Chlorine and iodine (but not fluorine, which is too reactive)
can produce aromatic substitution with the addition of
other reagents to promote the reaction
 Chlorination requires FeCl3
 Iodine must be oxidized to form a more powerful I+ species
(with Cu2+ from CuCl2)

5
Aromatic Nitration


The combination of nitric acid and sulfuric acid produces NO2+
(nitronium ion)
 The reaction with benzene produces nitrobenzene

 The Nitro group can be reduced to an Amino group if needed

6
Aromaticby SO (sulfonation)
Sulfonation
Substitution of H


3
 Reaction with a mixture of sulfuric acid and SO3 (“Fuming H2SO4)
 Reactive species is sulfur trioxide or its conjugate acid

 Sulfonamides are “sulfa drug” antibiotics

7
Alkylation of Aromatic Rings: The Friedel–Crafts
Reaction
 Alkylation among most

useful electrophilic
aromatic substitution
reactions

 Aromatic substitution

of R+ for H+

 Aluminum chloride

promotes the
formation of the
carbocation

8
Limitations of the Friedel-Crafts Alkylation
 Only alkyl halides can be used (F, Cl, I, Br)
 Aryl halides and vinylic halides do not react (their

carbocations are too hard to form)
 Will not work with rings containing an amino group
substituent or a strongly electron-withdrawing group

9
Other Problems with Alkylation
 Multiple alkylations can occur because the first alkylation is

activating

 Carbocation Rearrangements Occur During Alkylation
 Similar to those occuring during electrophilic additions to alkene
 Can involve H or alkyl shifts

10
Acylation of Aromatic Rings
 Reaction of an acid chloride (RCOCl) and an aromatic ring

in the presence of AlCl3 introduces acyl group, COR


Benzene with acetyl chloride yields acetophenone



 Avoids many of the problems of alkylation
 Only substitutes once, because acyl group is deactivating
 No rearrangement because of resonance stabilized cation
11
Mechanism of Friedel-Crafts Acylation
 Similar to alkylation
 Reactive electrophile: resonance-stabilized acyl cation
 An acyl cation does not rearrange

 Can reduce carbonyl to get alkyl product

12
Substituent Effects in Aromatic Rings
 Substituents can cause a compound to be (much) more or

(much) less reactive than benzene

 Substituents affect the orientation of the reaction – the

positional relationship is controlled

 ortho- and para-directing activators, ortho- and para-

directing deactivators, and meta-directing
deactivators.

13
Origins of Substituent Effects
 An interplay of inductive effects and resonance effects
 Inductive effect - withdrawal or donation of electrons

through a σ bond = Polar Covalent Bonds

 Resonance effect - withdrawal or donation of electrons

through a π bond due to the overlap of a p orbital on the
substituent with a p orbital on the aromatic ring

14
Inductive Effects
 Controlled by electronegativity and the polarity of

bonds in functional groups
 Halogens, C=O, CN, and NO2 withdraw electrons
through σ bond connected to ring
 Alkyl groups donate electrons

15
Resonance Effects – Electron Withdrawal
 C=O, CN, NO2 substituents withdraw electrons from

the aromatic ring by resonance
 π electrons flow from the rings to the substituents
 Look for a double (or triple) bond connected to
the ring by a single bond

16
Resonance Effects – Electron Donation
 Halogen, OH, alkoxyl (OR), and amino substituents

donate electrons
 π electrons flow from the substituents to the ring
 Effect is greatest at ortho and para positions
 Look for a lone pair on an atom attached to the ring

17
An Explanation of Substituent Effects
 Activating groups donate

electrons to the ring,
stabilizing the
carbocation intermediate
 Deactivating groups

withdraw electrons from
the ring, destabilizing
carbocation intermediate

18
Ortho/Para-Directing Activators: Alkyl Groups

 Alkyl groups activate by induction: direct further substitution

to positions ortho and para to themselves
 Alkyl group has most effect on the ortho and para positions

19
Ortho/Para-Directing Activators: OH and NH 2
 Alkoxyl, and amino groups have a strong, electron-

donating resonance effect
 Most pronounced at the ortho and para positions

20
Ortho/Para-Directing Deactivators: Halogens

 Electron-withdrawing inductive effect outweighs weaker electron-

donating resonance effect
 Resonance effect is only at the ortho and para positions,
stabilizing carbocation intermediate

21
Meta-Directing Deactivators


Inductive and resonance effects reinforce each other
 Ortho and para intermediates destabilized by
deactivation of carbocation intermediate
 Resonance cannot produce stabilization

22
Summary Table: Effect of Substituents in
Aromatic Substitution

23
Trisubstituted Benzenes: Additivity of Effects
 If the directing effects of the two groups are the same, the

result is additive

 If the directing effects of two groups oppose each other, the

more powerful activating group decides the principal outcome
 Usually gives mixtures of products

24
Meta-Disubstituted Compounds
 The reaction site is too hindered
 To make aromatic rings with three adjacent

substituents, it is best to start with an orthodisubstituted compound

25
Nucleophilic Aromatic Substitution para
 Aryl halides with electron-withdrawing substituents ortho and
react with nucleophiles (electron withdrawing needed to accept
electrons from the nucleophile)
 Form addition intermediate (Meisenheimer complex) that is
stabilized by electron-withdrawal. Halide is leaving group.

26
Benzyne: Substitution of Unactivated Aromatics

 Phenol is prepared industrially by treatment of chlorobenzene

with dilute aqueous NaOH at 340°C under high pressure
 The reaction involves an elimination reaction that gives a
triple bond in the ring: benzyne

27
Structure of Benzyne
 Benzyne is a highly distorted alkyne
 The triple bond uses sp2-hybridized carbons, not the

usual sp
 The triple bond has one π bond formed by p–p
overlap and another by weak sp2–sp2 overlap

28
Oxidation of Aromatic Compounds
 Alkyl side chains can be oxidized to CO2H by strong

reagents such as KMnO4 if they have a C-H next to the ring
 Converts an alkylbenzene into a benzoic acid, ArR →

ArCO2H
 A benzylic C-H bond is required, or no reaction takes place

29
Bromination of Alkylbenzene Side Chains

 Reaction of an alkylbenzene with N-bromo-succinimide

(NBS) and benzoyl peroxide (radical initiator) introduces
Br into the side chain only at benzylic position

30
Reduction of Aromatic Compounds

 Aromatic rings are inert to catalytic hydrogenation under

conditions that reduce alkene double bonds
 Can selectively reduce an alkene double bond in the
presence of an aromatic ring
 Reduction of an aromatic ring requires more powerful
reducing conditions (high pressure or rhodium catalysts)

31
Reduction of Aryl Alkyl Ketones
 Aromatic ring activates neighboring carbonyl group

toward reduction
 Ketone is converted into an alkylbenzene by catalytic
hydrogenation over Pd catalyst

32
Synthesis of Trisubstituted Benzenes

 These syntheses require planning and consideration of alternative

routes
 Ability to plan a sequence of reactions in right order is valuable to
synthesis of substituted aromatic rings

33
34

More Related Content

What's hot

Addition reaction
Addition reactionAddition reaction
Addition reaction
Rahul B S
 
Electrophilic addition reaction
Electrophilic addition reactionElectrophilic addition reaction
Electrophilic addition reaction
kumar Bodapati
 
Nucleophilic Aromatic Substitution 1
Nucleophilic Aromatic Substitution 1Nucleophilic Aromatic Substitution 1
Nucleophilic Aromatic Substitution 1
Aadil Ali Wani
 

What's hot (20)

E2 Mechanism
E2 MechanismE2 Mechanism
E2 Mechanism
 
Carbocation ppt
Carbocation pptCarbocation ppt
Carbocation ppt
 
Addition reaction
Addition reactionAddition reaction
Addition reaction
 
Clemmensen reduction- Heterocyclic and Organic chemistry- As per PCI syllabus
Clemmensen reduction- Heterocyclic and Organic chemistry- As per PCI syllabusClemmensen reduction- Heterocyclic and Organic chemistry- As per PCI syllabus
Clemmensen reduction- Heterocyclic and Organic chemistry- As per PCI syllabus
 
Claisen rearrangement
Claisen rearrangementClaisen rearrangement
Claisen rearrangement
 
Wolff kishner reduction with mechanism
Wolff kishner reduction with mechanismWolff kishner reduction with mechanism
Wolff kishner reduction with mechanism
 
Electrophilic addition reaction
Electrophilic addition reactionElectrophilic addition reaction
Electrophilic addition reaction
 
Aromatic Nucleophilic Substitution
Aromatic Nucleophilic SubstitutionAromatic Nucleophilic Substitution
Aromatic Nucleophilic Substitution
 
Pinacol pinacolone rearrangement ppt.
Pinacol pinacolone rearrangement ppt.Pinacol pinacolone rearrangement ppt.
Pinacol pinacolone rearrangement ppt.
 
Birch reduction
Birch reductionBirch reduction
Birch reduction
 
Nucleophilic Aromatic Substitution 1
Nucleophilic Aromatic Substitution 1Nucleophilic Aromatic Substitution 1
Nucleophilic Aromatic Substitution 1
 
Alkene & its preparation
Alkene & its preparationAlkene & its preparation
Alkene & its preparation
 
Elimination reaction
Elimination reactionElimination reaction
Elimination reaction
 
Markovnikov's addition & anti-Markovnikov's addition
Markovnikov's addition & anti-Markovnikov's additionMarkovnikov's addition & anti-Markovnikov's addition
Markovnikov's addition & anti-Markovnikov's addition
 
Bayers strain theory
Bayers strain theoryBayers strain theory
Bayers strain theory
 
Reactions intermediate
Reactions intermediateReactions intermediate
Reactions intermediate
 
E1 &E2 mechanism, sandmeyer and benzyne mechanism
E1 &E2  mechanism, sandmeyer and benzyne mechanismE1 &E2  mechanism, sandmeyer and benzyne mechanism
E1 &E2 mechanism, sandmeyer and benzyne mechanism
 
Condensation reactions
Condensation reactions Condensation reactions
Condensation reactions
 
Electrophilic addition to alkenes
Electrophilic addition to alkenesElectrophilic addition to alkenes
Electrophilic addition to alkenes
 
Carbonyl compounds
Carbonyl compoundsCarbonyl compounds
Carbonyl compounds
 

Viewers also liked

Organic reactions and mechanisms
Organic reactions and mechanismsOrganic reactions and mechanisms
Organic reactions and mechanisms
Kandarp Vyas
 
Chemistry of benzene
Chemistry of benzeneChemistry of benzene
Chemistry of benzene
Kandarp Vyas
 
Chem 2124 unit 2c f2011
Chem 2124 unit 2c f2011Chem 2124 unit 2c f2011
Chem 2124 unit 2c f2011
Sonu Bajaj
 
Aromatic Substitution Reaction
Aromatic Substitution ReactionAromatic Substitution Reaction
Aromatic Substitution Reaction
panditamit1611
 
Aromatic nucleophilic substitution reaction
Aromatic nucleophilic substitution reactionAromatic nucleophilic substitution reaction
Aromatic nucleophilic substitution reaction
Cyril Mangan
 
Substitution Reaction
Substitution Reaction Substitution Reaction
Substitution Reaction
panditamit1611
 
Benzen lecture
Benzen lectureBenzen lecture
Benzen lecture
Ashwani96
 

Viewers also liked (20)

17 - Reactions of Aromatic Compounds - Wade 7th
17 - Reactions of Aromatic Compounds - Wade 7th17 - Reactions of Aromatic Compounds - Wade 7th
17 - Reactions of Aromatic Compounds - Wade 7th
 
Organic reaction mechanism
Organic reaction mechanismOrganic reaction mechanism
Organic reaction mechanism
 
Substitution reactions
Substitution reactionsSubstitution reactions
Substitution reactions
 
16 - Aromatic Compounds - Wade 7th
16 - Aromatic Compounds - Wade 7th16 - Aromatic Compounds - Wade 7th
16 - Aromatic Compounds - Wade 7th
 
Organic reactions and mechanisms
Organic reactions and mechanismsOrganic reactions and mechanisms
Organic reactions and mechanisms
 
Benzene
BenzeneBenzene
Benzene
 
Chemistry of benzene
Chemistry of benzeneChemistry of benzene
Chemistry of benzene
 
Nucleophilic substitution reactions
Nucleophilic substitution reactions Nucleophilic substitution reactions
Nucleophilic substitution reactions
 
Chem 2124 unit 2c f2011
Chem 2124 unit 2c f2011Chem 2124 unit 2c f2011
Chem 2124 unit 2c f2011
 
Organic Chemistry : Aromatic Compound (Benzene)
Organic Chemistry : Aromatic Compound (Benzene)Organic Chemistry : Aromatic Compound (Benzene)
Organic Chemistry : Aromatic Compound (Benzene)
 
Aromatic Substitution Reaction
Aromatic Substitution ReactionAromatic Substitution Reaction
Aromatic Substitution Reaction
 
Aromatic nucleophilic substitution reaction
Aromatic nucleophilic substitution reactionAromatic nucleophilic substitution reaction
Aromatic nucleophilic substitution reaction
 
EAS
EASEAS
EAS
 
Aromatic compounds
Aromatic compoundsAromatic compounds
Aromatic compounds
 
Nitration
NitrationNitration
Nitration
 
Substitution Reaction
Substitution Reaction Substitution Reaction
Substitution Reaction
 
Sn reaction
Sn reactionSn reaction
Sn reaction
 
Aromaticity
AromaticityAromaticity
Aromaticity
 
Benzen lecture
Benzen lectureBenzen lecture
Benzen lecture
 
Arenes - Benzene
Arenes -  BenzeneArenes -  Benzene
Arenes - Benzene
 

Similar to Electrophillic substitution of benzene

17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp0117 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
Dr Robert Craig PhD
 

Similar to Electrophillic substitution of benzene (20)

Sulphonation 2
Sulphonation 2Sulphonation 2
Sulphonation 2
 
Sulphonation 4
Sulphonation 4Sulphonation 4
Sulphonation 4
 
Chapter_12.ppt
Chapter_12.pptChapter_12.ppt
Chapter_12.ppt
 
Electrophilic reaction.ppt
Electrophilic reaction.pptElectrophilic reaction.ppt
Electrophilic reaction.ppt
 
Organic Chemistry: Benzene and Its Derivates
Organic Chemistry: Benzene and Its DerivatesOrganic Chemistry: Benzene and Its Derivates
Organic Chemistry: Benzene and Its Derivates
 
Benzene &; its derivative
Benzene &; its derivativeBenzene &; its derivative
Benzene &; its derivative
 
Chapter_12.ppt
Chapter_12.pptChapter_12.ppt
Chapter_12.ppt
 
Benzene & Aromatic Compound
Benzene & Aromatic CompoundBenzene & Aromatic Compound
Benzene & Aromatic Compound
 
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp0117 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
 
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp0117 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
17 reactionsofaromaticcompounds-wade7th-140409022156-phpapp01
 
Aromatic elctrophilic and nucleophilic substitution reaction
Aromatic elctrophilic and nucleophilic substitution reactionAromatic elctrophilic and nucleophilic substitution reaction
Aromatic elctrophilic and nucleophilic substitution reaction
 
nucliophilic_substitution.pdf
nucliophilic_substitution.pdfnucliophilic_substitution.pdf
nucliophilic_substitution.pdf
 
Ch15MR reactions of substituted benzenes.ppt
Ch15MR reactions of substituted benzenes.pptCh15MR reactions of substituted benzenes.ppt
Ch15MR reactions of substituted benzenes.ppt
 
Nucleophilic Aromatic Substitution
Nucleophilic Aromatic SubstitutionNucleophilic Aromatic Substitution
Nucleophilic Aromatic Substitution
 
An overview of organic reaction mechanisms
An overview of organic reaction mechanismsAn overview of organic reaction mechanisms
An overview of organic reaction mechanisms
 
Benzene
BenzeneBenzene
Benzene
 
Halogenoalkanes as level chemistry
Halogenoalkanes as level chemistryHalogenoalkanes as level chemistry
Halogenoalkanes as level chemistry
 
Orientation in Aromatic compounds.ppt
Orientation in Aromatic compounds.pptOrientation in Aromatic compounds.ppt
Orientation in Aromatic compounds.ppt
 
Aromatic electrophilic substitution mishu
Aromatic electrophilic substitution mishuAromatic electrophilic substitution mishu
Aromatic electrophilic substitution mishu
 
Aromaticity2
Aromaticity2Aromaticity2
Aromaticity2
 

Recently uploaded

Gardella_Mateo_IntellectualProperty.pdf.
Gardella_Mateo_IntellectualProperty.pdf.Gardella_Mateo_IntellectualProperty.pdf.
Gardella_Mateo_IntellectualProperty.pdf.
MateoGardella
 
An Overview of Mutual Funds Bcom Project.pdf
An Overview of Mutual Funds Bcom Project.pdfAn Overview of Mutual Funds Bcom Project.pdf
An Overview of Mutual Funds Bcom Project.pdf
SanaAli374401
 
Activity 01 - Artificial Culture (1).pdf
Activity 01 - Artificial Culture (1).pdfActivity 01 - Artificial Culture (1).pdf
Activity 01 - Artificial Culture (1).pdf
ciinovamais
 
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
kauryashika82
 
Seal of Good Local Governance (SGLG) 2024Final.pptx
Seal of Good Local Governance (SGLG) 2024Final.pptxSeal of Good Local Governance (SGLG) 2024Final.pptx
Seal of Good Local Governance (SGLG) 2024Final.pptx
negromaestrong
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
QucHHunhnh
 

Recently uploaded (20)

Class 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdfClass 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdf
 
Gardella_Mateo_IntellectualProperty.pdf.
Gardella_Mateo_IntellectualProperty.pdf.Gardella_Mateo_IntellectualProperty.pdf.
Gardella_Mateo_IntellectualProperty.pdf.
 
Unit-IV; Professional Sales Representative (PSR).pptx
Unit-IV; Professional Sales Representative (PSR).pptxUnit-IV; Professional Sales Representative (PSR).pptx
Unit-IV; Professional Sales Representative (PSR).pptx
 
Ecological Succession. ( ECOSYSTEM, B. Pharmacy, 1st Year, Sem-II, Environmen...
Ecological Succession. ( ECOSYSTEM, B. Pharmacy, 1st Year, Sem-II, Environmen...Ecological Succession. ( ECOSYSTEM, B. Pharmacy, 1st Year, Sem-II, Environmen...
Ecological Succession. ( ECOSYSTEM, B. Pharmacy, 1st Year, Sem-II, Environmen...
 
Measures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SDMeasures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SD
 
How to Give a Domain for a Field in Odoo 17
How to Give a Domain for a Field in Odoo 17How to Give a Domain for a Field in Odoo 17
How to Give a Domain for a Field in Odoo 17
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdf
 
Web & Social Media Analytics Previous Year Question Paper.pdf
Web & Social Media Analytics Previous Year Question Paper.pdfWeb & Social Media Analytics Previous Year Question Paper.pdf
Web & Social Media Analytics Previous Year Question Paper.pdf
 
Holdier Curriculum Vitae (April 2024).pdf
Holdier Curriculum Vitae (April 2024).pdfHoldier Curriculum Vitae (April 2024).pdf
Holdier Curriculum Vitae (April 2024).pdf
 
An Overview of Mutual Funds Bcom Project.pdf
An Overview of Mutual Funds Bcom Project.pdfAn Overview of Mutual Funds Bcom Project.pdf
An Overview of Mutual Funds Bcom Project.pdf
 
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptxBasic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
 
psychiatric nursing HISTORY COLLECTION .docx
psychiatric  nursing HISTORY  COLLECTION  .docxpsychiatric  nursing HISTORY  COLLECTION  .docx
psychiatric nursing HISTORY COLLECTION .docx
 
Activity 01 - Artificial Culture (1).pdf
Activity 01 - Artificial Culture (1).pdfActivity 01 - Artificial Culture (1).pdf
Activity 01 - Artificial Culture (1).pdf
 
PROCESS RECORDING FORMAT.docx
PROCESS      RECORDING        FORMAT.docxPROCESS      RECORDING        FORMAT.docx
PROCESS RECORDING FORMAT.docx
 
This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.
 
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
 
Seal of Good Local Governance (SGLG) 2024Final.pptx
Seal of Good Local Governance (SGLG) 2024Final.pptxSeal of Good Local Governance (SGLG) 2024Final.pptx
Seal of Good Local Governance (SGLG) 2024Final.pptx
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
 
Measures of Central Tendency: Mean, Median and Mode
Measures of Central Tendency: Mean, Median and ModeMeasures of Central Tendency: Mean, Median and Mode
Measures of Central Tendency: Mean, Median and Mode
 
Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024
 

Electrophillic substitution of benzene

  • 1. Chemistry of Benzene: Electrophilic Aromatic Substitution
  • 2. Substitution Reactions of Benzene and Its Derivatives  Benzene is aromatic: a cyclic conjugated compound with 6 π electrons  Reactions of benzene lead to the retention of the aromatic core 2
  • 3. Electrophilic Aromatic Bromination  Benzene’s π electrons participate as a Lewis base in      reactions with Lewis acids The product is formed by loss of a proton, which is replaced by bromine FeBr3 is added as a catalyst to polarize the bromine reagent In the first step the π electrons act as a nucleophile toward Br2 (in a complex with FeBr3) This forms a cationic addition intermediate from benzene and a bromine cation The intermediate is not aromatic and therefore high in energy 3
  • 4. Formation of Product from  The cationic addition intermediate Intermediate transfers a proton to FeBr4- (from Br- and FeBr3)  This restores aromaticity (in contrast with addition in alkenes) 4
  • 5. Other Aromatic Halogenations  Chlorine and iodine (but not fluorine, which is too reactive) can produce aromatic substitution with the addition of other reagents to promote the reaction  Chlorination requires FeCl3  Iodine must be oxidized to form a more powerful I+ species (with Cu2+ from CuCl2) 5
  • 6. Aromatic Nitration  The combination of nitric acid and sulfuric acid produces NO2+ (nitronium ion)  The reaction with benzene produces nitrobenzene  The Nitro group can be reduced to an Amino group if needed 6
  • 7. Aromaticby SO (sulfonation) Sulfonation Substitution of H  3  Reaction with a mixture of sulfuric acid and SO3 (“Fuming H2SO4)  Reactive species is sulfur trioxide or its conjugate acid  Sulfonamides are “sulfa drug” antibiotics 7
  • 8. Alkylation of Aromatic Rings: The Friedel–Crafts Reaction  Alkylation among most useful electrophilic aromatic substitution reactions  Aromatic substitution of R+ for H+  Aluminum chloride promotes the formation of the carbocation 8
  • 9. Limitations of the Friedel-Crafts Alkylation  Only alkyl halides can be used (F, Cl, I, Br)  Aryl halides and vinylic halides do not react (their carbocations are too hard to form)  Will not work with rings containing an amino group substituent or a strongly electron-withdrawing group 9
  • 10. Other Problems with Alkylation  Multiple alkylations can occur because the first alkylation is activating  Carbocation Rearrangements Occur During Alkylation  Similar to those occuring during electrophilic additions to alkene  Can involve H or alkyl shifts 10
  • 11. Acylation of Aromatic Rings  Reaction of an acid chloride (RCOCl) and an aromatic ring in the presence of AlCl3 introduces acyl group, COR  Benzene with acetyl chloride yields acetophenone   Avoids many of the problems of alkylation  Only substitutes once, because acyl group is deactivating  No rearrangement because of resonance stabilized cation 11
  • 12. Mechanism of Friedel-Crafts Acylation  Similar to alkylation  Reactive electrophile: resonance-stabilized acyl cation  An acyl cation does not rearrange  Can reduce carbonyl to get alkyl product 12
  • 13. Substituent Effects in Aromatic Rings  Substituents can cause a compound to be (much) more or (much) less reactive than benzene  Substituents affect the orientation of the reaction – the positional relationship is controlled  ortho- and para-directing activators, ortho- and para- directing deactivators, and meta-directing deactivators. 13
  • 14. Origins of Substituent Effects  An interplay of inductive effects and resonance effects  Inductive effect - withdrawal or donation of electrons through a σ bond = Polar Covalent Bonds  Resonance effect - withdrawal or donation of electrons through a π bond due to the overlap of a p orbital on the substituent with a p orbital on the aromatic ring 14
  • 15. Inductive Effects  Controlled by electronegativity and the polarity of bonds in functional groups  Halogens, C=O, CN, and NO2 withdraw electrons through σ bond connected to ring  Alkyl groups donate electrons 15
  • 16. Resonance Effects – Electron Withdrawal  C=O, CN, NO2 substituents withdraw electrons from the aromatic ring by resonance  π electrons flow from the rings to the substituents  Look for a double (or triple) bond connected to the ring by a single bond 16
  • 17. Resonance Effects – Electron Donation  Halogen, OH, alkoxyl (OR), and amino substituents donate electrons  π electrons flow from the substituents to the ring  Effect is greatest at ortho and para positions  Look for a lone pair on an atom attached to the ring 17
  • 18. An Explanation of Substituent Effects  Activating groups donate electrons to the ring, stabilizing the carbocation intermediate  Deactivating groups withdraw electrons from the ring, destabilizing carbocation intermediate 18
  • 19. Ortho/Para-Directing Activators: Alkyl Groups  Alkyl groups activate by induction: direct further substitution to positions ortho and para to themselves  Alkyl group has most effect on the ortho and para positions 19
  • 20. Ortho/Para-Directing Activators: OH and NH 2  Alkoxyl, and amino groups have a strong, electron- donating resonance effect  Most pronounced at the ortho and para positions 20
  • 21. Ortho/Para-Directing Deactivators: Halogens  Electron-withdrawing inductive effect outweighs weaker electron- donating resonance effect  Resonance effect is only at the ortho and para positions, stabilizing carbocation intermediate 21
  • 22. Meta-Directing Deactivators  Inductive and resonance effects reinforce each other  Ortho and para intermediates destabilized by deactivation of carbocation intermediate  Resonance cannot produce stabilization 22
  • 23. Summary Table: Effect of Substituents in Aromatic Substitution 23
  • 24. Trisubstituted Benzenes: Additivity of Effects  If the directing effects of the two groups are the same, the result is additive  If the directing effects of two groups oppose each other, the more powerful activating group decides the principal outcome  Usually gives mixtures of products 24
  • 25. Meta-Disubstituted Compounds  The reaction site is too hindered  To make aromatic rings with three adjacent substituents, it is best to start with an orthodisubstituted compound 25
  • 26. Nucleophilic Aromatic Substitution para  Aryl halides with electron-withdrawing substituents ortho and react with nucleophiles (electron withdrawing needed to accept electrons from the nucleophile)  Form addition intermediate (Meisenheimer complex) that is stabilized by electron-withdrawal. Halide is leaving group. 26
  • 27. Benzyne: Substitution of Unactivated Aromatics  Phenol is prepared industrially by treatment of chlorobenzene with dilute aqueous NaOH at 340°C under high pressure  The reaction involves an elimination reaction that gives a triple bond in the ring: benzyne 27
  • 28. Structure of Benzyne  Benzyne is a highly distorted alkyne  The triple bond uses sp2-hybridized carbons, not the usual sp  The triple bond has one π bond formed by p–p overlap and another by weak sp2–sp2 overlap 28
  • 29. Oxidation of Aromatic Compounds  Alkyl side chains can be oxidized to CO2H by strong reagents such as KMnO4 if they have a C-H next to the ring  Converts an alkylbenzene into a benzoic acid, ArR → ArCO2H  A benzylic C-H bond is required, or no reaction takes place 29
  • 30. Bromination of Alkylbenzene Side Chains  Reaction of an alkylbenzene with N-bromo-succinimide (NBS) and benzoyl peroxide (radical initiator) introduces Br into the side chain only at benzylic position 30
  • 31. Reduction of Aromatic Compounds  Aromatic rings are inert to catalytic hydrogenation under conditions that reduce alkene double bonds  Can selectively reduce an alkene double bond in the presence of an aromatic ring  Reduction of an aromatic ring requires more powerful reducing conditions (high pressure or rhodium catalysts) 31
  • 32. Reduction of Aryl Alkyl Ketones  Aromatic ring activates neighboring carbonyl group toward reduction  Ketone is converted into an alkylbenzene by catalytic hydrogenation over Pd catalyst 32
  • 33. Synthesis of Trisubstituted Benzenes  These syntheses require planning and consideration of alternative routes  Ability to plan a sequence of reactions in right order is valuable to synthesis of substituted aromatic rings 33
  • 34. 34