Fundamentholfundamenthol

Introduction to General Organic Chemistry

ChemistrySome Basic Principles of Organic ChemistryFor NEET aspirants

General Organic Chemistry (GOC) is the study of how covalent bonds break and which short-lived species drive organic reactions. Every organic reaction starts with a bond cleavage, either homolytic (each atom keeps one electron, forming free radicals) or heterolytic (one atom takes both electrons, forming a carbocation and a carbanion). The three key reactive intermediates in JEE and NEET organic chemistry are carbocations, carbanions, and free radicals. Their structure, hybridization, and stability trends decide the mechanism and product of nearly every organic transformation.

Key Ideas - Quick Reference
  1. Homolytic cleavage: (each atom gets one electron, free radicals formed, favoured in non-polar solvents and UV light).
  2. Heterolytic cleavage: or (both electrons go to one atom, ions formed, favoured in polar solvents).
  3. Carbocation : sp, planar, 120°, empty p-orbital. Stability: ; benzyl and allyl are extra-stable by resonance.
  4. Carbanion : sp, pyramidal, lone pair at one apex. Stability: (reverse of carbocation).
  5. Free radical : sp, planar, unpaired electron in p-orbital. Stability parallels carbocation: benzyl allyl vinyl.
  6. Electron-releasing groups (alkyl, , ) stabilise carbocations; electron-withdrawing groups (, , ) stabilise carbanions.

1. Bond Cleavage - the Starting Point of Every Organic Reaction

Organic reactions proceed through the formation of reactive intermediates, and these intermediates are generated when a covalent bond in the reactant breaks. Depending on how the shared pair of electrons is divided between the two atoms, bond cleavage is of two types: homolytic and heterolytic.

The three intermediates you must know are:

  • Free radicals like (methyl radical)
  • Carbocations like (methyl cation)
  • Carbanions like (methyl carbanion)

1.1 Homolytic (Symmetrical) Cleavage

In homolytic cleavage, the two electrons shared in the covalent bond are split equally: one electron goes to each of the two bonded atoms. The species formed are called free radicals, and this movement is denoted by half-headed (fish-hook) arrows.

Example:

Key features of free radicals produced this way:

  • They are electrically neutral (no positive or negative charge).
  • They are extremely reactive because of the unpaired electron.
  • Homolysis is favoured in non-polar solvents, gas phase, and by UV light or heat.

Geometry change: The methyl radical is sp-hybridised with three bonds and a singly-occupied p-orbital, HCH angle 120°, and all three bonds coplanar. So when a methyl radical is formed by homolytic cleavage of , the carbon changes geometry from tetrahedral to planar and rehybridises from sp to sp.

Homolytic bond cleavage forming two free radicals Diagram showing a covalent bond A-B breaking homolytically. Two curved fish-hook arrows show one electron going to A and one electron going to B, producing two neutral free radicals A dot and B dot. A B heat / hν A + B Shared pair splits equally Two neutral free radicals Fish-hook arrows → one electron each
Figure 1: Homolytic cleavage of . Each atom retains one electron and forms an electrically neutral free radical.

1.2 Heterolytic (Unsymmetrical) Cleavage

When a covalent bond between two atoms A and B breaks so that both electrons of the shared pair are taken away by one atom, the mode is called heterolytic cleavage. This is indicated by a full-headed curved arrow that denotes a two-electron shift.

The more electronegative atom keeps the electron pair and becomes the anion; the other becomes the cation.

  • Heterolysis produces charged species (a cation and an anion).
  • It usually occurs in polar covalent bonds and is favoured by polar solvents (water, ethanol) which stabilise the ions.
  • When a carbocation is formed, the carbon changes from sp to sp, just like in homolysis but with a positive charge and an empty p-orbital instead of an unpaired electron.
Heterolytic bond cleavage forming a cation and an anion Diagram showing a polar covalent bond A-B breaking heterolytically. A full-headed curved arrow moves both electrons to B, producing a positive cation A and a negative anion B with a lone pair. A B polar solvent A + + B − Both electrons go to one atom Cation + anion produced Full-headed arrow → both electrons together
Figure 2: Heterolytic cleavage of a polar bond. Both bonding electrons go to the more electronegative atom, producing charged ions.

1.3 Homolytic vs Heterolytic - Side-by-Side

FeatureHomolytic CleavageHeterolytic Cleavage
Electron distributionOne electron to each atomBoth electrons to one atom
Species formedFree radicals (neutral)Cation and anion (charged)
Arrow notationHalf-headed (fish-hook)Full-headed curved arrow
Favoured byNon-polar solvents, UV, heat, peroxidesPolar solvents, polar bonds
Typical bondNon-polar (e.g. , )Polar (e.g. , )

1.4 Curly Arrow Notation - Reading Mechanisms

Every organic mechanism uses curly arrows to show where electrons move. Learning to read them is the single most important skill in organic chemistry.

Curly arrow notation legend for organic mechanisms Reference legend showing two types of curved arrows used in organic chemistry mechanisms. On the left a half-headed fish-hook arrow representing single-electron movement used in homolytic cleavage. On the right a full-headed curved arrow representing two-electron movement used in heterolytic cleavage. FISH-HOOK ARROW (half-headed) Moves 1 electron Homolysis, radical reactions FULL-HEAD ARROW (regular curved arrow) Moves 2 electrons Heterolysis, ionic reactions
Figure 3: Curly arrow notation. A fish-hook (half-headed) arrow tracks a single electron; a full-headed arrow tracks a pair. The arrow always points from where the electrons start to where they end up.
Golden rule: An arrow shows electron movement, not atom movement. It starts from a bond or a lone pair (the electron source) and ends at an atom or an empty orbital (the electron sink).

2. Reaction Intermediates - an Overview

Most organic reactions occur through the involvement of certain chemical species which are generally short-lived (10 seconds to a few seconds) and highly reactive, and hence cannot be isolated. These are called reactive intermediates.

Because they are so unstable, reactive intermediates are detected by spectroscopic methods (ESR, NMR), trapped chemically, or their presence is confirmed by indirect evidence such as product distribution and kinetics.

Do not confuse reactive intermediates with synthetic intermediates. Synthetic intermediates are stable compounds that are actually prepared, isolated, and purified for use as starting materials in a synthesis. Reactive intermediates cannot be stored in a bottle.

3. Carbocations (earlier called Carbonium Ions)

Carbocations are the key intermediates in a huge number of organic reactions, particularly in nucleophilic substitution () and electrophilic addition reactions of alkenes.

3.1 Structure of Carbocations

In a carbocation, the positively charged carbon atom is bonded to three other atoms and has no non-bonding electrons. It is sp-hybridised with a planar structure and bond angles of about 120°. There is a vacant unhybridised p-orbital lying perpendicular to the plane of the three (or ) bonds.

Structure of methyl carbocation showing sp2 trigonal planar geometry with empty p orbital perpendicular to the sp2 plane Methyl carbocation CH3 plus. The central sp2 carbon is bonded to three hydrogens at 120 degrees in a trigonal planar arrangement, drawn with wedge and dash notation: one bond horizontal in the plane of the page, one solid wedge coming out of the page toward the viewer, and one dashed wedge going into the page. A vertical empty p orbital shown as a dumbbell sits above and below the carbon, perpendicular to the sp2 plane containing the three C-H bonds. empty p-orbital H H H C + all H–C–H = 120° sp², planar trigonal planar p-orbital ⊥ sp² (H–C–H) plane
Figure 4: Structure of methyl carbocation . The central carbon is sp hybridised with all three C-H bonds at 120° in one plane (shown by wedge-and-dash notation). The empty p-orbital lies perpendicular to this sp plane.

3.2 Stability of Carbocations

There is a marked increase in carbocation stability with additional alkyl substitution. This is why the rate of addition to alkenes decreases in the order:

The reason is the stability of the carbocation formed in the rate-determining step. Alkyl groups are electron-releasing (+I effect). Three alkyl groups release more electron density than two, and two more than one, so the positive charge is dispersed more effectively. The final order is:

Stability of carbocations:

Additional stabilisation from resonance and heteroatoms:

  • Allyl and benzyl cations are extra-stable because the positive charge is delocalised over two atoms (allyl) or the ring (benzyl) by resonance.
  • Substituent effects on benzyl cation: electron-donating groups like -methoxy () and -amino () stabilise it by 14 and 26 kcal/mol respectively, while electron-withdrawing groups like -nitro () destabilise it by about 20 kcal/mol.
  • Heteroatoms with lone pairs next to the cationic centre (like ) donate their electrons into the empty p-orbital, giving very stable "oxocarbenium" cations that can even be isolated as solids.
  • Cyclopropylmethyl cations are even more stable than benzyl cations because the bent orbitals of the cyclopropyl ring conjugate with the empty p-orbital.
  • Bridgehead carbocations are very hard to form because the carbon cannot become planar. This is direct evidence that carbocations must be planar.
  • Vinyl cations are unusually unstable because they lack effective resonance and hyperconjugation.
Rule of thumb: Stability number of hyperconjugated structures number of -hydrogens on the cationic carbon. This explains the alkyl-substitution stability order.
Resonance stabilisation of allyl carbocation Two canonical resonance structures of the allyl cation shown side by side. On the left the positive charge is on carbon three with a double bond between carbon one and carbon two. A curved arrow shows the double bond pi electrons moving to the right. On the right the positive charge has moved to carbon one and the double bond is now between carbon two and carbon three. The double-headed resonance arrow between them indicates the two structures are equivalent contributors. CH2 CH CH2 + CH2 + CH CH2 Structure I Structure II Positive charge delocalised over two carbons
Figure 5: Resonance stabilisation of the allyl cation. The positive charge is shared between the two terminal carbons, giving the ion much greater stability than a plain primary cation.
Resonance stabilisation of benzyl carbocation over the aromatic ring Three canonical resonance structures of the benzyl cation. The first structure shows a benzene ring with a CH2 plus group attached at the ipso vertex; the aromatic ring is intact and the positive charge sits on the exocyclic CH2 carbon. The second structure has the positive charge shifted onto an ortho ring carbon, with the CH2 group now doubly bonded to the ipso carbon and two double bonds remaining in the ring. The third structure has the positive charge on the para ring carbon, again with the CH2 doubly bonded to the ipso carbon and two double bonds elsewhere in the ring. A fourth equivalent structure at the other ortho carbon is implied. CH2 + CH2 + CH2 + Charge on CH2 Charge on ortho C Charge on para C Charge spread across four ring positions (fourth structure at other ortho C is equivalent)
Figure 6: Resonance stabilisation of the benzyl cation. The positive charge delocalises from the benzylic carbon into the ortho and para positions of the aromatic ring, producing exceptional stability.
Hyperconjugation in tert-butyl carbocation showing sigma C-H bond donating into empty p orbital Diagram of the tert-butyl cation showing hyperconjugation. The central sp2 carbon carries a positive charge and has a vertical empty p orbital shown as a dumbbell. A neighbouring methyl group has a C-H sigma bond oriented parallel to the empty p orbital, and the overlap between them is indicated by a shaded lobe. This partial donation of the sigma electrons into the empty p orbital stabilises the cation. empty p-orbital C + C H σ (C−H) → empty p overlap H H C H₃ C H₃ Each σ C−H aligned with the empty p can donate → 9 α-H in (CH₃)₃C⁺
Figure 7: Hyperconjugation in . A bond on an -carbon aligned with the empty p-orbital donates electron density into it. With three methyl groups (nine -hydrogens), tert-butyl cation is far more stabilised than any 2° or 1° cation.
Stability order of carbocations tertiary greater than secondary greater than primary greater than methyl Bar-style stability ladder showing four carbocations arranged left to right in decreasing stability. From left, tertiary carbocation, then secondary, then primary, then methyl cation. Height of the bar indicates relative stability. 3° 2° 1° CH3⁺ Tertiary Secondary Primary Methyl Stability
Figure 8: Stability order of alkyl carbocations. Greater alkyl substitution disperses the positive charge and increases stability.

4. Carbanions

A carbanion is a chemical species that bears a negative charge on carbon and possesses eight electrons in its valence shell. Carbanions are produced by heterolytic cleavage of a covalent bond in which the shared pair of electrons is retained by the carbon atom.

4.1 Structure of Carbanions

A carbanion carries an unshared pair of electrons and thus behaves as a base and a nucleophile. The best description is that the central carbon is sp-hybridised with the lone pair occupying one apex of the tetrahedron. So carbanions have pyramidal structures similar to those of amines like .

They rapidly interconvert between two pyramidal forms through an umbrella-flip (just like the nitrogen inversion in amines). This is why chiral carbanions almost always give a racemic mixture instead of retention of configuration.

Structure of methyl carbanion showing sp3 pyramidal geometry with lone pair Methyl carbanion CH3 minus. Central carbon is sp3 hybridised in a tetrahedral pyramid. Three carbon hydrogen bonds point downward and outward, and a lone pair occupies the fourth apex pointing upward. lone pair C − H H H sp³, pyramidal like ammonia
Figure 9: Structure of methyl carbanion . The carbon is sp hybridised with a lone pair at one apex of the tetrahedron, producing a pyramidal geometry similar to ammonia.

4.2 Stability of Carbanions

Because a carbanion has a lone pair and a negative charge, anything that removes electron density stabilises it, and anything that adds electron density destabilises it. This is the exact opposite of carbocations.

  • Electron-attracting groups like , , and increase stability by pulling the negative charge away.
  • Electron-releasing groups like decrease stability by pushing more electron density onto the already negative carbon.
  • Benzyl carbanion is stabilised by resonance because the lone pair delocalises into the ring.
Stability of carbanions:

4.3 Generation and Properties

The best-known source of carbanion character is the Grignard reagent () and other organometallic compounds where carbon is bonded to a less electronegative metal such as lithium, sodium, potassium, or zinc. The bond is highly polar with carbon carrying a partial negative charge, so it acts as a source from which the organic group can be transferred with its electrons.

Properties: Carbanions are nucleophilic and basic. Since the negative charge sits on carbon (which is less electronegative than nitrogen), a carbanion is a stronger base and better nucleophile than the corresponding amine. In fact, alkyl carbanions are basic enough to remove a proton from ammonia.

5. Free Radicals

A free radical is a species that has one or more unpaired electrons. In ordinary molecules all electrons are paired and the total magnetic moment is zero, but radicals have a net magnetic moment and are therefore paramagnetic. Free radicals are usually detected by electron spin resonance (ESR), also called electron paramagnetic resonance (EPR).

5.1 Structure of Free Radicals

Simple alkyl radicals have a planar (trigonal) structure, i.e. they are sp-hybridised with the odd electron sitting in the unhybridised p-orbital. A pyramidal sp structure is also possible for some radicals, so free radicals are not always strictly planar.

Structure of methyl free radical showing sp2 trigonal planar geometry with unpaired electron in a p orbital perpendicular to the sp2 plane Methyl free radical CH3 dot. The central sp2 carbon is bonded to three hydrogens at 120 degrees in a trigonal planar arrangement, drawn with wedge and dash notation: one bond horizontal in the plane of the page, one solid wedge coming out of the page toward the viewer, and one dashed wedge going into the page. A vertical p orbital shown as a dumbbell sits above and below the carbon, perpendicular to the sp2 plane, with a single unpaired electron marked in the upper lobe. unpaired e⁻ H H H C all H–C–H = 120° sp², planar neutral, paramagnetic p-orbital ⊥ sp² (H–C–H) plane
Figure 10: Structure of methyl free radical . The central sp carbon is planar with all three C-H bonds at 120° (shown by wedge-and-dash notation). The single unpaired electron sits in the p-orbital perpendicular to that plane.
Evidence for planarity: When a free radical is generated at a chiral centre, the resulting product is racemic (optical activity is lost). A planar radical is attacked at either face with equal probability, giving both enantiomers in equal amounts. On the other hand, radicals can be generated at bridgeheads (unlike carbocations), which shows a pyramidal geometry is also possible.

5.2 Stability of Free Radicals

Just like carbocations, the stability of alkyl free radicals follows the order tertiary secondary primary methyl, and this is again explained on the basis of hyperconjugation. The stabilising effect in allylic and benzylic radicals arises from resonance with the adjacent -system.

Ease of formation / stability of alkyl free radicals:
benzyl allyl vinyl

Bond-dissociation energies confirm this: about 19 kcal/mol less energy is needed to form a benzyl radical from toluene than to form a methyl radical from methane. Triphenylmethyl-type radicals are exceptionally stable, largely because steric hindrance prevents dimerisation, not just resonance.

5.3 Free Radicals in Action - Chlorination of Methane

The classic example of a free-radical reaction is the chlorination of methane, . It proceeds in three stages: initiation (radicals are born), propagation (radicals do the work in a chain), and termination (radicals combine and disappear).

Step 1: Initiation. A molecule absorbs a UV photon and the bond breaks homolytically to give two chlorine radicals.

Homolytic cleavage of chlorine molecule under UV light forming two chlorine free radicals A chlorine molecule Cl-Cl absorbs UV light shown as h nu above the arrow. Two orange half-headed fish-hook arrows show one electron moving to each chlorine atom. The result is two chlorine atoms each carrying a single unpaired electron dot, that is two chlorine free radicals. Cl Cl hν UV light Cl + Cl Non-polar Cl−Cl bond Two Cl radicals (initiation)
Figure 11: Initiation step. UV light () homolytically cleaves the bond to produce two chlorine free radicals .

Step 2: Propagation. Each new radical reacts to make yet another radical, so the chain keeps going. A chlorine radical abstracts a hydrogen from methane, producing and a methyl radical. The methyl radical then attacks , producing and a new chlorine radical, which starts the cycle again.

Propagation step of methane chlorination showing chlorine radical abstracting hydrogen from methane Two propagation half-steps. In the first, a chlorine radical Cl dot attacks methane, abstracting a hydrogen atom to give H-Cl and a methyl radical CH3 dot. In the second, the methyl radical attacks a Cl2 molecule to give methyl chloride CH3-Cl and a new chlorine radical, which continues the chain. Step 2a Cl + H CH3 H Cl + CH3 (methyl radical) Step 2b CH3 + Cl Cl CH3 Cl + Cl (chain continues) Every step consumes one radical and produces another → chain propagates
Figure 12: Propagation. A chlorine radical abstracts a hydrogen from to give and a methyl radical; the methyl radical then reacts with to give and regenerates a chlorine radical, sustaining the chain.
Termination steps (, , ) remove radicals from the pot and finally stop the chain. A single initiation event can trigger thousands of propagation cycles, which is why radical reactions are so fast.

6. Electrophiles and Nucleophiles

Every ionic organic reaction is essentially a handshake between an electron-poor species (electrophile) and an electron-rich species (nucleophile). Recognising which is which lets you predict the direction of arrow-pushing and the product of the reaction.

6.1 Electrophiles ("electron loving")

An electrophile is any species that accepts a pair of electrons during a chemical reaction. Electrophiles are either positively charged or electron-deficient at some atom. They are the same as Lewis acids.

  • Positive electrophiles: , , , , (all carbocations).
  • Neutral electrophiles: , , , , (carbonyl carbon), (the alkyl carbon).

6.2 Nucleophiles ("nucleus loving")

A nucleophile is any species that donates a pair of electrons during a chemical reaction. Nucleophiles are either negatively charged or carry a lone pair that they can share. They are the same as Lewis bases.

  • Negative nucleophiles: , , , (alkoxide), (all carbanions).
  • Neutral nucleophiles (with lone pair): , , , , .
Nucleophile attacking an electrophile with arrow pushing A nucleophile hydroxide with lone pair attacks the partially positive carbon of a methyl bromide molecule. One curved arrow moves the lone pair from oxygen to carbon, and a second curved arrow moves the C-Br bond electrons onto bromine. The products are methanol and bromide anion. HO − + CH3 δ+ Br δ− HO CH3 + Br − Nucleophile (donates pair) Electrophile (accepts pair) Two-arrow mechanism: lone pair forms new bond; old bond leaves as Br−
Figure 13: Nucleophile-electrophile reaction. Hydroxide () uses its lone pair to attack the carbon of ; simultaneously, the bond electrons leave as . This two-arrow, single-step mechanism is substitution.

6.3 Quick Comparison

FeatureElectrophileNucleophile
MeaningElectron lovingNucleus loving
ElectronsAccepts a pairDonates a pair
ChargePositive or neutral electron-deficientNegative or neutral with lone pair
Lewis roleLewis acidLewis base
Example, , , carbocation, , , carbanion
In reactionsAttacked by nucleophileAttacks electrophile

7. Types of Organic Reactions

Every organic reaction, no matter how complex, belongs to one of these four broad categories. Recognising the type helps you write the right mechanism and predict the product.

Four types of organic reactions substitution addition elimination and rearrangement A four-panel diagram showing the four main types of organic reactions. Top left substitution where methyl bromide reacts with hydroxide to give methanol and bromide. Top right addition where ethene reacts with hydrogen bromide to give bromoethane. Bottom left elimination where 2-bromo propane reacts with base to give propene plus hydrogen bromide. Bottom right rearrangement where a primary carbocation rearranges to a more stable tertiary carbocation via hydride shift. 1. SUBSTITUTION one group replaces another CH3Br + OH− CH3OH + Br− Br leaves; OH takes its place Sub-types: SN1, SN2, SEAr, radical 2. ADDITION π bond breaks, two new σ bonds form CH2=CH2 + HBr CH3CH2Br H and Br add across C=C Sub-types: electrophilic, nucleophilic, radical 3. ELIMINATION two groups leave, π bond forms CH3CHBrCH3 KOH, Δ CH3CH=CH2 H and Br leave; new C=C bond Sub-types: E1, E2 (mirror of addition) 4. REARRANGEMENT atoms shuffle to more stable form 1° carbocation H-shift 3° C+ Less stable → more stable via hydride (H:⁻) or alkyl (R:⁻) shift
Figure 14: The four types of organic reactions. Substitution and elimination compete on the same substrate; addition is characteristic of -bonds; rearrangement converts a less-stable intermediate to a more-stable one.

7.1 Substitution

One atom or group in a molecule is replaced by another. Classic example: . Sub-types: nucleophilic (, ), electrophilic (aromatic ), and free-radical substitution.

7.2 Addition

Two atoms or groups add across a multiple bond ( bond broken, two bonds made). Classic example: . Sub-types: electrophilic (alkenes, alkynes), nucleophilic (carbonyls), and free-radical addition.

7.3 Elimination

Two atoms or groups leave adjacent carbons and a bond forms between them. Classic example: . Sub-types: E1, E2. Elimination is the mirror image of addition.

7.4 Rearrangement

Atoms in a molecule reorganise to give a more stable isomer. Commonly seen when a carbocation intermediate can shift a hydride () or alkyl group to itself from an adjacent carbon to convert a less-stable cation (e.g. 1° or 2°) into a more stable one (2° or 3°). This is why reactions sometimes give unexpected products.

8. All Three Intermediates - At a Glance

FeatureCarbocation Carbanion Free radical
Electrons on C6 (electron-deficient)8 (with lone pair)7 (unpaired)
ChargePositiveNegativeNeutral
Hybridisationspsp (mostly)sp (mostly)
GeometryPlanar, 120°Pyramidal, ~107°Planar (trigonal)
Extra featureEmpty p-orbitalLone pair at apexOdd electron in p-orbital
BehaviourElectrophile / Lewis acidNucleophile / Lewis baseNeutral, reactive
Formed byHeterolysis (loses pair)Heterolysis (keeps pair)Homolysis
Stability order
Detected byNMR, kineticsNMR, trappingESR (paramagnetic)

Solved Examples

Solved Example 1
The greater the s-character in an orbital, the ______ is its energy.
(A) Greater   (B) Lower   (C) Both   (D) None
Solution:

The 2s orbital is closer to the nucleus and lower in energy than the 2p orbital. An sp orbital (50% s) is closer to the nucleus than sp (33% s) or sp (25% s). So more s-character means the electrons are held closer to the nucleus and the orbital is lower in energy.

Answer: (B) Lower.

Solved Example 2
Which of the following carbocations is most stable?
(A) (isopropyl)
(B) (tert-butyl)
(C) (benzyl)
(D) (allyl)
Solution:

Compare the stabilisation available to each cation:

  • (A) 2° carbocation, only two alkyl groups (+I and hyperconjugation).
  • (B) 3° carbocation, three alkyl groups (strong hyperconjugation, nine -hydrogens).
  • (C) Benzyl cation, resonance-stabilised over the ring (four canonical forms).
  • (D) Allyl cation, resonance-stabilised over two atoms.

The benzyl cation is stabilised by resonance over the aromatic ring plus a small -hyperconjugation contribution. This is generally the most stable among the four.

Answer: (C) Benzyl cation.

Solved Example 3
Which bond is weaker?
(a)   (b)
Solution:

Bond-dissociation energy of depends on the stability of the resulting carbocation (or radical) after cleavage.

  • (a) breaks to give the benzyl cation , which is resonance-stabilised over the ring.
  • (b) breaks to give a primary cation that is not directly conjugated with the ring.

Since the benzyl cation is far more stable, the bond in (a) is weaker and easier to break.

Answer: (a) has the weaker bond.

Solved Example 4
Arrange the following in the increasing order of bond energy:
(a) (1° propyl)
(b) (3° tert-butyl bromide)
(c) (1° pentyl)
(d) (vinyl bromide)
(e) (benzyl bromide)
Solution:

Weaker bond more stable resulting cation.

  • (d) Vinyl cation is the least stable (sp carbon, no hyperconjugation), so is strongest.
  • (b) Tert-butyl cation is 3° and highly stable, so is weak.
  • (e) Benzyl cation is resonance-stabilised, so is weakest.
  • (a) and (c) are both primary alkyl; roughly equal, but (a) is slightly less stabilised.

Increasing bond energy: (e) (b) (a) (c) (d)

Solved Example 5
Which bond is weaker and why?
(i)   (ii)
Solution:

When (i) breaks heterolytically, it gives the cation . The oxygen lone pair donates into the empty p-orbital of carbon and creates an extra -bond, forming a very stable oxocarbenium ion.

Cation (ii) is just a primary ethyl cation with no such stabilisation.

So the bond in (i) is weaker because the resulting cation is far more stable.

Solved Example 6
Identify the more stable carbanion in each pair:
(a) and
(b) and
(c) and
Solution:
  • (a) The propyl carbanion is 1°; the isopropyl carbanion is 2°. Fewer alkyl groups pushing electron density means less destabilisation, so (1°) is more stable (inductive effect argument).
  • (b) Methyl carbanion has no +I alkyl groups; the isopropyl carbanion has two. So is more stable.
  • (c) Benzyl carbanion has its lone pair directly conjugated with the ring (resonance-stabilised). The homobenzyl carbanion is not conjugated. So is more stable.
Solved Example 7
Alkenes undergo electrophilic addition and benzene undergoes electrophilic substitution, even though both proceed through a carbocation intermediate. Explain.
Solution:

In alkenes, the -electrons are localised in the double bond. When an electrophile attacks, the resulting carbocation is a plain (usually secondary or tertiary) cation. The nucleophile then adds to this cation, giving an addition product and destroying the double bond permanently.

In benzene, the -electrons are delocalised over the ring (aromatic system, 6 -electrons). Electrophile attack gives a resonance-stabilised arenium ion (sigma complex). Restoring aromaticity is a huge driving force, worth about 36 kcal/mol of resonance energy. So instead of the nucleophile adding, a proton is lost and the ring becomes aromatic again, giving a substitution product.

Solved Example 8
Which of the following statements is correct?
(A) Allyl carbonium ion () is more stable than propyl carbonium ion.
(B) Propyl carbonium ion is more stable than allyl carbonium ion.
(C) Both are equally stable.
(D) None of these.
Solution:

The allyl cation is stabilised by resonance: the positive charge is delocalised over two carbon atoms via the adjacent double bond.

The propyl cation () is a plain primary cation with only weak inductive stabilisation and no resonance. Hence the allyl cation is far more stable.

Answer: (A).

Common Mistakes to Avoid

Watch out
  • Reversing the carbanion stability order. Carbanions follow , the opposite of carbocations. Alkyl groups are electron-releasing, which destabilises a negatively charged carbon.
  • Confusing homolytic and heterolytic arrows. Fish-hook (half-headed) arrows show one electron moving (homolytic). Full-headed curved arrows show two electrons moving together (heterolytic). Mixing them up is a common exam mark loss.
  • Assuming vinyl cations are stable. Vinyl cations () are actually less stable than . The sp-hybridised cation carbon is not helped by resonance or hyperconjugation.
  • Forgetting that carbocations must be planar. A bridgehead carbocation (like at the bridgehead of norbornane) cannot become planar and is nearly impossible to form. This is often tested.
  • Treating radicals and carbocations as identical. They have the same alkyl-substitution stability order and both are sp, but radicals are neutral and paramagnetic, while carbocations are positive and diamagnetic.
  • Missing the sp nature of carbanions. Carbocations and radicals are sp, but carbanions are sp (pyramidal, with a lone pair). Do not assume all three intermediates share the same geometry.

Frequently Asked Questions

Q1. What is the difference between homolytic and heterolytic bond cleavage?

In homolytic cleavage, the two shared electrons split equally, giving each atom one electron and forming two neutral free radicals. In heterolytic cleavage, both electrons go to one atom, giving a cation and an anion. Homolysis is favoured by non-polar solvents, UV light, and heat; heterolysis needs polar bonds and polar solvents.

Q2. Why is the stability order of carbanions opposite to that of carbocations?

A carbocation is electron-deficient, so electron-releasing alkyl groups (+I effect) stabilise it, making 3° 2° 1° methyl. A carbanion is already electron-rich, so alkyl groups pushing more electron density onto it destabilise it. Fewer alkyl groups (methyl carbanion) means less destabilisation, giving methyl 1° 2° 3°.

Q3. What is the hybridisation and geometry of a methyl carbocation?

The methyl carbocation is sp-hybridised with a planar (trigonal) geometry and bond angles of about 120°. There is an empty unhybridised p-orbital perpendicular to the plane of the three bonds, which is why the cation is a strong electrophile.

Q4. Why is the benzyl carbocation exceptionally stable?

The empty p-orbital on the benzylic carbon is in conjugation with the aromatic ring's -system. This lets the positive charge delocalise over the ortho and para positions of the ring, giving four resonance structures. This spread of charge dramatically lowers the energy of the cation. Electron-donating groups on the ring (like , ) stabilise it further.

Q5. How are free radicals detected experimentally?

Free radicals have an unpaired electron, so they are paramagnetic. The technique used is electron spin resonance (ESR), also called electron paramagnetic resonance (EPR). Radicals can also be trapped chemically using spin traps, or their presence inferred indirectly from product distributions and the effect of radical initiators or inhibitors on the reaction.

Q6. Why can carbocations not be formed at bridgeheads?

A carbocation must be planar (sp) because it has an empty p-orbital perpendicular to a trigonal plane. A bridgehead carbon in a bicyclic system (like norbornyl or adamantyl) is locked in a rigid, roughly tetrahedral geometry and physically cannot become planar. So bridgehead carbocations are extremely difficult to form. Bridgehead radicals and carbanions, which do not need to be planar, form much more easily.

Q7. What are reactive intermediates and how are they different from synthetic intermediates?

Reactive intermediates (carbocations, carbanions, free radicals, carbenes, nitrenes, benzyne) are short-lived species (10 s to a few seconds) that appear during a reaction but cannot be isolated. Synthetic intermediates are stable compounds that are actually prepared and purified in the lab, and then used as starting materials for the next step of a multi-step synthesis.

Q8. Why is a Grignard reagent considered a carbanion source?

In a Grignard reagent , magnesium is far less electronegative than carbon, so the bond is highly polar with a significant on carbon. The alkyl group therefore behaves like a carbanion: it attacks electrophilic carbons in aldehydes, ketones, esters, and . This is why Grignards form new bonds so readily.

Q9. What is the role of s-character in the energy of an orbital?

The s orbital is spherically symmetric and its electrons are held closest to the nucleus. Greater s-character in a hybrid orbital (sp sp sp) means the electrons are on average closer to the nucleus, so the orbital is lower in energy, more electronegative, and forms shorter, stronger bonds. This explains why sp-hybridised carbons in alkynes are more acidic than sp carbons in alkanes.

Q10. What is the difference between an electrophile and a nucleophile?

An electrophile is an electron-poor species that accepts an electron pair (it is a Lewis acid, either positive or neutral electron-deficient, like , , , or a carbocation). A nucleophile is an electron-rich species that donates an electron pair (it is a Lewis base, either negative or neutral with a lone pair, like , , , or a carbanion). In every ionic reaction, a nucleophile attacks an electrophile.

Q11. What are the four main types of organic reactions?

The four types are substitution (one group replaces another, e.g. ), addition (two groups add across a bond, e.g. ), elimination (two groups leave adjacent carbons and a bond forms, e.g. dehydrohalogenation of alkyl halides), and rearrangement (atoms reorganise to give a more stable isomer, commonly seen when carbocation intermediates shift hydrides or alkyl groups to become more stable).

Previous year questions on Introduction to General Organic Chemistry

2 questions from past papers, each with a step-by-step solution.

Ready to master Some Basic Principles of Organic Chemistry?

Take a full mock test, practice concept-by-concept, and get an AI-powered rank prediction — all on Fundamenthol.