Organic Chemistry · Class XI–XII
IIT JEE Advanced · NEET · Class XI–XII

Organic
Chemistry
Mastery

A comprehensive learning resource covering IUPAC nomenclature, all types of isomerism, reaction intermediates, electronic effects (inductive, resonance, hyperconjugation), and fundamental reaction types — crafted for top-tier competitive exam preparation.

IUPAC Naming
Structural Isomers
Carbocations & Carbanions
Resonance & Hyperconjugation
SN1, SN2, E1, E2
Named Reactions
Chemistry laboratory equipment
Section 01

IUPAC Nomenclature

Systematic naming rules for organic compounds — the language of chemistry.

Golden Rule IUPAC name = Substituents (prefix) + Longest chain (root) + Degree of unsaturation + Principal functional group (suffix)
C
Chain Length Prefixes (Root Words)
Carbons Prefix Example IUPAC Name
1 Meth- CH₄ Methane
2 Eth- C₂H₆ Ethane
3 Prop- C₃H₈ Propane
4 But- C₄H₁₀ Butane
5 Pent- C₅H₁₂ Pentane
6 Hex- C₆H₁₄ Hexane
7 Hept- C₇H₁₆ Heptane
8 Oct- C₈H₁₈ Octane
9 Non- C₉H₂₀ Nonane
10 Dec- C₁₀H₂₂ Decane
FG
Functional Group Suffixes
Functional Group Suffix Formula Example
Alkane -ane C–C Propane
Alkene -ene C=C Propene
Alkyne -yne C≡C Propyne
Alcohol -ol –OH Propan-1-ol
Aldehyde -al –CHO Propanal
Ketone -one C=O Propan-2-one
Carboxylic Acid -oic acid –COOH Propanoic acid
Amide -amide –CONH₂ Propanamide
Amine -amine –NH₂ Propylamine
Nitrile -nitrile –CN Propanenitrile
S
Common Substituent Prefixes
Alkyl groups
–CH₃ → methyl
–C₂H₅ → ethyl
–C₃H₇ → propyl
–C₄H₉ → butyl
–CH(CH₃)₂ → isopropyl
Halogens
–F → fluoro
–Cl → chloro
–Br → bromo
–I → iodo
Other groups
–NO₂ → nitro
–NH₂ → amino
–OH → hydroxy
–OCH₃ → methoxy
–C₆H₅ → phenyl
Step-by-Step Naming Guide
01
Identify the Principal Functional Group
Use seniority order: COOH > SO₃H > COOR > COCl > CONH₂ > CN > CHO > C=O > OH > NH₂ > C=C > C≡C > Halogen. This group determines the suffix.
02
Select the Longest Carbon Chain
Choose the chain that contains the principal functional group and has the maximum carbon atoms. This is the parent chain (root word).
03
Number the Chain
Start numbering from the end that gives lowest locant to the principal functional group. In case of a tie, give lowest locant to the substituent appearing first alphabetically.
04
Name the Substituents
List substituents in alphabetical order (ignoring multiplying prefixes di-, tri-). Use di-, tri-, tetra- for identical groups. Complex substituents get parentheses.
05
Construct the Full Name
Locant-substituent(s)-root-locant-suffix e.g., 3-methylpentan-2-ol
Interactive IUPAC Naming Checker
Select a compound above to see its IUPAC name and analysis.
Section 02

Isomerism

Compounds with identical molecular formulae but different arrangements or spatial orientations.

SN2 reaction mechanism
Chain Isomerism

Compounds with the same molecular formula but different carbon skeleton (chain) arrangements.

Example: C₅H₁₂
n-Pentane: CH₃–CH₂–CH₂–CH₂–CH₃
Isopentane: CH₃–CH(CH₃)–CH₂–CH₃ (2-methylbutane)
Neopentane: C(CH₃)₄ (2,2-dimethylpropane)

Physical properties (b.p., m.p.) differ. Branched isomers have lower boiling points due to reduced surface area.

SN2 reaction mechanism
SN2 reaction mechanism
Functional Group Isomerism

Same molecular formula but different functional groups, giving compounds from different homologous series.

Alcohols ↔ Ethers (C₂H₆O)
CH₃CH₂OH (ethanol)
CH₃–O–CH₃ (methoxymethane)
Aldehydes ↔ Ketones (C₃H₆O)
CH₃CH₂CHO (propanal)
CH₃COCH₃ (propan-2-one)
Carboxylic Acids ↔ Esters (C₂H₄O₂)
HCOOCH₃ (methyl methanoate)
CH₃COOH (ethanoic acid)
Alkenes ↔ Cycloalkanes (C₃H₆)
CH₂=CHCH₃ (propene)
△ (cyclopropane)
Position Isomerism

Same molecular formula and carbon chain, but functional group or substituent is at a different position.

Example: C₄H₉Cl
1-Chlorobutane: CH₃CH₂CH₂CH₂Cl
2-Chlorobutane: CH₃CH₂CHClCH₃
1-Chloro-2-methylpropane: (CH₃)₂CHCH₂Cl
2-Chloro-2-methylpropane: (CH₃)₃CCl
SN2 reaction mechanism
Geometric (Cis-Trans) Isomerism

Arises due to restricted rotation around C=C double bond. Condition: each carbon of the double bond must have two different groups.

Condition for geometric isomerism Each C of C=C must bear two different substituents. If either carbon bears identical groups → no geometric isomers.
2-butene (CH₃CH=CHCH₃):
cis-2-butene: both CH₃ on same side (b.p. 3.7°C)
trans-2-butene: CH₃ on opposite sides (b.p. 0.9°C)

E/Z system (Cahn–Ingold–Prelog):
Z (zusammen) = same side of higher-priority groups
E (entgegen) = opposite sides of higher-priority groups
JEE Key Point Cis isomers generally have higher b.p. (polarity) but lower m.p. than trans isomers. Trans isomers are more symmetric → higher m.p., more stable.
SN2 reaction mechanism
Optical Isomerism

Compounds that rotate plane-polarized light. Requires a chiral carbon (sp³ carbon with 4 different groups attached).

Key Terms
R
Enantiomers
Non-superimposable mirror images. Rotate PPL equally but in opposite directions. Identical physical properties except optical rotation.
D
Diastereomers
Stereoisomers that are NOT mirror images. Different physical properties. Includes cis-trans isomers.
M
Meso Compounds
Has chiral centers but is optically inactive due to internal plane of symmetry. Achiral molecule overall.
SN2 reaction mechanism
R/S Configuration (CIP Rules)
1
Assign priorities
Higher atomic number → higher priority. If tie, go to next atom. Phantom atoms for multiple bonds.
2
Orient molecule
Place lowest priority group (4) away from you (going into page).
3
Trace 1→2→3
Clockwise → R (rectus). Anticlockwise → S (sinister).
Place lowest priority group (4) away from you (going into page. On the otherhand 4th priority wedge position towards you, then the clockwise system indicates S-Isomer
SN2 reaction mechanism
Formula Max. optical isomers = 2ⁿ (n = no. of chiral carbons)
Meso compounds reduce this number.
Tautomerism

Dynamic interconversion between two isomers, usually involving proton transfer and shift of a double bond. Most common: keto-enol tautomerism.

Keto ⇌ Enol tautomerism:

CH₃–C(=O)–CH₃ ⇌ CH₃–C(OH)=CH₂
(acetone: keto) (enol form, minor)

Acetylacetone: 80% enol (stabilized by resonance + H-bonding)
Glucose: α and β forms (mutarotation)
JEE Key Point Tautomers are in equilibrium, interconverting via proton transfer (acid/base catalysis). They differ from resonance structures — tautomers are real, separate molecules with finite lifetime.
SN2 reaction mechanism
Section 03

Reaction Intermediates

Short-lived, high-energy species formed and consumed during organic reactions.

Carbocation (Carbenium Ion)
Electron deficient

Carbon with only 3 bonds and an empty p-orbital. Has a positive charge. sp² hybridized, planar geometry.

R₃C⁺ (tertiary = most stable)
R₂CH⁺ (secondary)
RCH₂⁺ (primary = least stable)
CH₃⁺ (methyl = very unstable)
Stability Order 3° > 2° > 1° > methyl
Allylic ≈ 3° > Benzylic ≈ 3°
Stabilized by: +I, hyperconjugation, resonance
JEE Trick Allyl cation (CH₂=CH–CH₂⁺) stabilized by resonance with vinyl group. Cyclopentadienyl cation has 4π electrons — antiaromatic, highly unstable!
SN2 reaction mechanism
Carbanion
Electron rich

Carbon with 3 bonds + lone pair. Has a negative charge. Generally sp³ hybridized (pyramidal) unless stabilized.

CH₃⁻ (methyl = most stable carbanion)
RCH₂⁻ (primary)
R₂CH⁻ (secondary)
R₃C⁻ (tertiary = least stable)
Stability Order (opposite to carbocations!) methyl > 1° > 2° > 3°
Stabilized by: –I effect, resonance, adjacent π system, sp hybridization
Key Example Acetylide anion (R–C≡C⁻): sp hybridized, very stable due to high s-character (50%) → strongly electronegative carbon
SN2 reaction mechanism
Free Radical
Unpaired electron

Carbon species with one unpaired electron and three bonds. sp² hybridized, planar. Neutral but highly reactive.

R₃C• (tertiary radical = most stable)
R₂CH• (secondary radical)
RCH₂• (primary radical)
•CH₃ (methyl radical)
Stability Order 3° > 2° > 1° > methyl
Allyl > benzyl > 3° > 2° > 1°
Stabilized by hyperconjugation and resonance

Formed by: homolytic cleavage (heat, UV, peroxides). React via chain mechanism: initiation → propagation → termination.

SN2 reaction mechanism
:
Carbene & Nitrene
Neutral, 2-bond

Carbene: carbon with only TWO bonds and two non-bonding electrons. Extremely reactive.

:CH₂ (methylene carbene)
:CCl₂ (dichlorocarbene)

Singlet carbene: spin-paired, sp² (electrophilic)
Triplet carbene: spin-parallel, sp² + p (radical-like)
Nitrene :NH species — nitrogen analogue of carbene. Formed from azides (R–N₃ →Δ R–N: + N₂). Used in Curtius rearrangement.
SN2 reaction mechanism
Comparative Summary of Intermediates
Property Carbocation Carbanion Free Radical Carbene
Charge +1 –1 0 0
Bonding electrons 6 (3 bonds) 8 (3 bonds + LP) 7 (3 bonds + 1e⁻) 4 (2 bonds + 2e⁻)
Hybridization sp² sp³ (usually) sp² sp²/sp
Geometry Planar (trigonal) Pyramidal Planar Bent
Stability increases with +I, resonance, hyperconj –I, resonance, sp char. Hyperconj, resonance Electroneg. substituents
Cleavage type Heterolytic Heterolytic Homolytic α-elimination
Intermediate Stability Analyzer
Select type and structure to analyze stability and properties.
Section 04

Electronic Effects

How electrons are distributed through bonds and influence reactivity and stability.

σ
Inductive Effect (I-effect)
Transmitted through σ-bonds

Displacement of σ-bond electrons due to electronegativity difference. Decreases rapidly with chain length.

+I Effect (electron donating) Pushes electrons toward the reference carbon.
–CH₃ > –C₂H₅ > –C₃H₇ > –C(CH₃)₃
Metal-C bonds: –MgX, –Li also +I
–I Effect (electron withdrawing) Pulls electrons away from chain.
–F > –OH > –NH₂ > –Br > –Cl > –I
–NO₂ > –CN > –CHO > –COOH > –COOR
Application Strength of acids: +I groups weaken acidity; –I groups strengthen acidity.
Formic acid > Acetic acid (CH₃ is +I, reduces acidity)
SN2 reaction mechanism
π
Resonance (Mesomeric) Effect
Delocalization through π-bonds

Delocalization of π-electrons or lone pairs over conjugated systems. Operates over longer distances than inductive effect.

+M Effect (electron donating by resonance) Groups with lone pairs adjacent to π-system donate electrons.
–NH₂ > –OH > –OR > –F > –Cl > –Br > –I
–M Effect (electron withdrawing by resonance) Groups with π-bonds withdraw electrons.
–NO₂ > –CN > –CHO > –COOH > –SO₃H
Aniline: NH₂ donates e⁻ to ring by +M
Nitrobenzene: NO₂ withdraws e⁻ from ring by –M
Phenol: OH is +M → activates ortho/para positions
SN2 reaction mechanism
H
Hyperconjugation
No-bond resonance / σ-π delocalization

Delocalization of σ-bonding electrons (C–H bonds of alkyl groups) into adjacent empty p-orbital or π-system. Also called "Baker-Nathan effect."

Key Principle More α-hydrogens → more hyperconjugation → greater stability
(CH₃)₃C⁺: 9 α-H → most stable 3° carbocation
(CH₃)₂CH⁺: 6 α-H → 2° carbocation
CH₃CH₂⁺: 3 α-H → 1° carbocation
CH₃–CH=CH₂ ↔ ⁺CH₂–CH=CH₂ (no-bond resonance)
The C–H bond partially overlaps with empty p-orbital of C⁺
or π* of double bond, delocalizing electron density.
Applications 1. Stability of carbocations and free radicals
2. Stability of alkenes (more substituted = more stable)
3. Acidic character of C–H bonds adjacent to π-system
4. Ortho/para directing nature of alkyl groups on benzene
hyperconjucation effect
E
Electromeric Effect
Reagent-induced π-electron transfer

Complete transfer of π-electrons from one atom to another in the presence of a reagent. Temporary effect — occurs only when the reagent approaches.

+E Effect π-electrons transferred toward the attacking electrophile's carbon.
C=C + E⁺ → transfer toward E⁺
–E Effect π-electrons transferred away from the attacking nucleophile's carbon.
C=O + Nu:⁻ → transfer away from Nu⁻
Comparison with Resonance Resonance: permanent delocalization, exists even without reagent.
Electromeric: temporary, only when reagent attacks.
hyperconjucation effect
Hyperconjugation — Count α-Hydrogens
Select a species to count α-hydrogens and analyze hyperconjugative stabilization.
Electronic Effects — Comparative Overview
Effect Type of Bond Permanent/Temporary Range Requires Reagent
Inductive (I) σ-bond Permanent Short (decreases with distance) No
Resonance/Mesomeric (M) π-bond / lone pair Permanent Through conjugation No
Hyperconjugation σ C–H into π Permanent Adjacent position No
Electromeric (E) π-bond Temporary Within molecule Yes
Section 05

Basic Reaction Types

Classification of organic reactions by bond-making and bond-breaking mechanisms.

SN2 reaction mechanism
Substitution Reactions

One atom/group is replaced by another.

SN1 (Unimolecular Nucleophilic)
Step 1: R–X → R⁺ + X⁻ (slow, rate-determining)
Step 2: R⁺ + Nu:⁻ → R–Nu (fast)

Rate = k[R–X] (first order)
Favored: 3° > 2° substrates
Solvent: polar protic
Stereochemistry: racemization
Memory Aid SN1: "one substrate decides the rate" → unimolecular. Forms carbocation → planar → racemization.
SN2 (Bimolecular Nucleophilic)
Nu:⁻ + R–X → [Nu···R···X]‡ → Nu–R + X⁻
(One concerted step — backside attack)

Rate = k[R–X][Nu⁻] (second order)
Favored: methyl > 1° > 2° >> 3°
Solvent: polar aprotic (DMSO, DMF)
Stereochemistry: inversion (Walden inversion)
Memory Aid SN2: "two species in rate law" → bimolecular. Backside attack → 100% inversion (umbrella flip).
Electrophilic Aromatic Substitution (EAS)
ArH + E⁺ → Ar–E + H⁺

Mechanism: Attack of E⁺ → Arenium ion (σ-complex) → Deprotonation → Substituted product

Examples: Halogenation (X₂/FeX₃), Nitration (HNO₃/H₂SO₄), Sulfonation (H₂SO₄),
Friedel-Crafts Alkylation (R–X/AlCl₃), Friedel-Crafts Acylation (RCOCl/AlCl₃)
SN2 reaction mechanism
Addition Reactions

Two reactants combine to form a single product. Common in alkenes, alkynes, carbonyls.

Electrophilic Addition (to C=C)
HBr + CH₂=CH₂ → CH₃CH₂Br

Mechanism:
Step 1: H⁺ attacks π-bond → carbocation
Step 2: Br⁻ attacks carbocation

Markovnikov's Rule:
H adds to C with more H atoms (H to the H-rich carbon).
Anti-Markovnikov: with peroxide (free radical mechanism)
Nucleophilic Addition (to C=O)
Nu:⁻ + R–CHO → R–CH(OH)–Nu

Nu attacks electrophilic carbon of C=O:
Aldehydes > Ketones (steric effect)

Examples:
HCN + RCHO → Cyanohydrin
NaHSO₃ + RCHO → Bisulfite adduct
RMgX + C=O → Alcohol (Grignard)
Ozonolysis & Catalytic Hydrogenation Alkene + O₃ → ozonide → (Zn/H₂O) → aldehyde/ketone
Alkene + H₂ → (Pt/Pd/Ni, heat) → Alkane (syn addition, cis product from cis-alkene)
SN2 reaction mechanism
Elimination Reactions

Removal of atoms/groups from adjacent carbons to form a π-bond (alkene or alkyne).

E1 (Unimolecular Elimination)
Step 1: R–X → R⁺ + X⁻ (slow)
Step 2: Base removes β-H → alkene (fast)

Rate = k[R–X]
Favored: 3° substrate, weak base, polar protic
Follows Saytzeff's Rule:
More substituted alkene preferred
E2 (Bimolecular Elimination)
Base removes β-H simultaneously with C–X breaking
(concerted one-step mechanism)

Rate = k[R–X][Base]
Requires anti-periplanar geometry (β-H and X are anti)
Strong bulky base (t-BuOK) → Hofmann product (less substituted alkene)
Normal strong base → Saytzeff product
Competition: SN vs E High temperature → Elimination favored
Strong bulky base → E2 over SN2
3° substrate + weak nucleophile → SN1 or E1
Saytzeff's rule: more substituted (more stable) alkene forms preferentially in E1 and E2 (with non-bulky base)
SN2 reaction mechanism
Rearrangement Reactions

Migration of a group or hydride from one atom to an adjacent atom, usually to form a more stable intermediate.

Occurs in SN1 and E1 reactions when a more stable carbocation can be formed.

(CH₃)₂CHCH₂⁺ → [1,2-hydride shift] → (CH₃)₂C⁺CH₃
(primary → tertiary carbocation)

Neopentyl system: (CH₃)₃C–CH₂⁺ → 1,2-methyl shift → (CH₃)₂C⁺–CH₂CH₃
(explains rearrangement products in solvolysis)
Vicinal diol (pinacol) → ketone (pinacolone) under acid catalysis.

(CH₃)₂C(OH)–C(OH)(CH₃)₂ →(H⁺)→ (CH₃)₃C–CO–CH₃
Protonation → 3° carbocation → 1,2-methyl shift → oxocarbenium → ketone
Beckmann: Oxime → amide (lactam) under acid
The group anti to –OH migrates.

R–C(=NOH)–R' →(H₂SO₄)→ R–CO–NHR' (amide)
Baeyer–Villiger: Ketone → ester/lactone with peroxide (mCPBA)
More substituted group migrates preferentially.
R–CO–R' + peracid → R–COO–R' (ester)
Migration order: H < methyl < primary < secondary < tertiary ≈ phenyl
SN2 reaction mechanism
Oxidation–Reduction
Key Oxidizing Agents
KMnO₄
KMnO₄ (acidic/basic)
Cold dilute: cis-diol formation from alkene
Hot conc.: cleavage → ketone/acid/CO₂
O₃
Ozonolysis (O₃)
Oxidative: O₃ then H₂O₂ → carboxylic acids
Reductive: O₃ then Zn/H₂O → aldehydes/ketones
CrO₃
PCC / CrO₃
PCC: 1° alcohol → aldehyde (stops here)
CrO₃/H₂SO₄: 1° → carboxylic acid
Key Reducing Agents
LiAlH₄
LiAlH₄ (LAH)
Reduces all carbonyl groups, esters, amides, nitriles, carboxylic acids → alcohols or amines. Cannot reduce C=C.
NaBH₄
NaBH₄
Milder — reduces aldehydes and ketones only. Leaves esters, carboxylic acids, amides intact.
H₂
Catalytic Hydrogenation
Pt/Pd/Ni: C=C → C–C, C≡C → C=C or C–C (syn addition). Lindlar's catalyst: alkyne → cis-alkene only.
Section 06

Named Reactions

Essential named reactions for IIT JEE Advanced and NEET.

2 CH₃CHO NaOH, Δ CH₃CH(OH)CH₂CHO CH₃CH=CHCHO + H₂O

Mechanism: Base abstracts α-H → enolate → nucleophilic addition to carbonyl → β-hydroxy aldehyde (aldol product) → dehydration (above 65°C) → α,β-unsaturated carbonyl (crotonaldehyde)

Aldol condensation diagram
JEE Key Cross aldol with two different carbonyl compounds gives a mixture of 4 products. Mixed aldol is useful only when one component lacks α-H (e.g. HCHO, benzaldehyde).
2 Benzaldehyde conc. NaOH CARBOXYLIC ACID + ALCOHOL

This redox disproportionation of non-enolizable aldehydes to carboxylic acids and alcohols is conducted in concentrated base..

Cannizzaro reaction diagram
R–X + Mg dry ether R–MgX + C=O R–C–OH

R–MgX is a powerful nucleophile and base. Reacts with HCHO → 1° alcohol; RCHO → 2° alcohol; R₂CO → 3° alcohol; CO₂ → carboxylic acid; ester → 3° alcohol. Must use dry ethereal solvent (reacts violently with water).

Grignard reaction diagram
Diene (s-cis) + Dienophile Δ or Lewis acid Cyclohexene

Concerted [4+2] cycloaddition. Diene must be in s-cis conformation. Dienophile is electron-poor (–CHO, –CN, –COOH). Syn addition — cis groups on diene end up cis in product. Stereospecific (endo/exo).

Endo Rule Endo product is kinetically preferred (secondary orbital interactions). Exo product is thermodynamically preferred.
Diels-Alder reaction diagram
ArCHO + (RCO)₂O RCOONa, Δ ArCH=CR–COOH + RCOOH

The Perkin reaction involves reacting a non-enolizable aldehyde with an acid anhydride such as acetic anhydride in the presence of a weak base to form an α, β-unsaturated acid. The base deprotonates the anhydride to form a carbanion which then attacks the aldehyde, forming an alkoxide ion. An internal transfer of the acetyl group occurs via a cyclic intermediate, and removal of an α-hydrogen leads to loss of the carboxylate leaving group, yielding the anion of the α, β-unsaturated acid product..

Perkin reaction diagram
PhONa + CO₂ 125°C, 4–7 atm o-Hydroxybenzoate (sodium salicylate)
PhOH + CHCl₃ aq. NaOH, Δ o-Hydroxybenzaldehyde (salicylaldehyde)

Kolbe's synthesis: Electrophilic attack by CO₂ on phenoxide ion at ortho position. Product: salicylic acid (aspirin precursor).

Reimer–Tiemann: Dichlorocarbene (:CCl₂) generated from CHCl₃/NaOH acts as electrophile. Introduces CHO at ortho position of phenol.

Kolbe and Reimer-Tiemann reaction diagram
Ar-N2Cl salt Cu-X Ar-X + N2 gas

The Sandmeyer reaction is a type of substitution reaction that is widely used in the production of aryl halides from aryl diazonium salts. In this process, we deal with Copper salts like chloride, bromide, or iodide ions that act as a catalyst in this reaction .

Cannizzaro reaction diagram
Ar + R-Cl AlCl3 Ar-R

When an aromatic ring reacts with an alkyl halide (such as methyl chloride) in the presence of AlCl₃, the catalyst pulls the halogen away, forming a carbocation. The electron-rich aromatic ring then attacks this carbocation, forming a new carbon-carbon bond

Cannizzaro reaction diagram
RCOCl+AlCl3 Ar /Benzene Ar-CO-R

Friedel-Crafts acylation is an electrophilic aromatic substitution reaction that attaches an acyl group (a carbonyl group bonded to an alkyl group) to an aromatic ring, such as benzene. It relies on a Lewis acid catalyst (like AlCl₃) to generate a highly reactive acylium ion from an acyl chloride or anhydride.

friedelcrafts acylation reaction diagram
Ar-NH2 NaNO2 + HCl Ar-N2Cl Diazonium Salt

The diazotization reaction is a chemical reaction that converts a primary aromatic amine into a diazonium salt.

diazotization reaction diagram
Benzene Li/NH3 or Na/NH3 Ethanol Diene

Birch reduction is an organic redox reaction that is used to convert an aromatic compound into a diene. The reaction is carried out by sodium or potassium metal dissolved in liquid ammonia in the presence of alcohol.

Birch reduction reaction diagram
CH3CHO Zn/HCl CH3-CH3

The reduction of aldehydes and ketones into corresponding hydrocarbon on treatment with zinc amalgam and concentrated hydrochloric acid.

clemmensen reaction diagram
CH3CHO + NH2-NH2 Hydrazone CH3-CH3

The Wolff-Kishner reduction is a chemical reaction used to convert aldehydes or ketones into alkanes, completely removing the carbonyl oxygen and replacing it with two hydrogen atoms (C=O → CH₂). The key components involved are hydrazine, a strong base, and a high-boiling solvent

Wolfkishner reduction reaction diagram
2 CH3 2Na CH3-CH3+ 2NaBr

The Wurtz reaction is a coupling reaction where two alkyl halides react with sodium metal in dry ether to form a higher symmetrical alkane and sodium halide.

wurtz reaction diagram
2 Ar-CHO KCN BENZOIN

The Benzoin Condensation (or Benzoin reaction) is a combination of two aldehydes to form a new C-C bond, often catalyzed by cyanide ion.

Benzoin reaction diagram
METHYL KETONE + I2/NaOH ACID WORKUP CARBOXYLATE ION + CHX3

The Haloform Reaction is a very specific type of alpha halogenation reaction. This reaction takes place at the methyl ketone turning the methyl into a good haloform leaving group. This can include chloroform and bromoform, and of course the Iodoform solid precipitate used in lab to test for the presence of a methyl ketone.

Haloform reaction diagram

In organic chemistry, an oxidation reaction is a process that increases the number of bonds to oxygen atoms or decreases the number of carbon-hydrogen (C-H) bonds

Cannizzaro reaction diagram
2 HCHO conc. NaOH CH₃OH + HCOONa

WILL BE UPDATED SOON.

Cannizzaro reaction diagram

Aromaticity is a property of conjugated cycloalkenes in which the stabilization of the molecule is enhanced due to the ability of the electrons in the orbitals to delocalize. This act as a framework to create a planar molecule..

Cannizzaro reaction diagram
2 HCHO conc. NaOH CH₃OH + HCOONa

WILL BE UPDATED SOON

Cannizzaro reaction diagram
Section 07

Quick Practice Quiz

Test your understanding — IIT JEE style questions.

Q 1 of 8
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Section 08

Quick-Reference Summary

At-a-glance overview of key concepts for revision.

Key Stability Orders & Memory Tricks
CARBOCATION STABILITY:
3° > 2° > 1° > methyl
Allylic ≈ Benzylic > 3°
Cyclopentadienyl cation → antiaromatic (UNSTABLE)
Cycloheptatrienyl cation → aromatic (STABLE)
──────────────────────────────
CARBANION STABILITY:
methyl > 1° > 2° > 3°
sp > sp² > sp³ (s-character increases stability)
Adjacent EWG stabilize; EDG destabilize
──────────────────────────────
FREE RADICAL STABILITY:
3° > 2° > 1° > methyl
Allyl > Benzyl > 3° > 2° > 1°
ACID STRENGTH:
EWG (–I, –M) → increase acidity
EDG (+I, +M) → decrease acidity
HCOOH > CH₃COOH > C₂H₅COOH
Cl₃CCOOH >> CCl₂HCOOH > CClH₂COOH
──────────────────────────────
BASE STRENGTH (amines in water):
R₂NH > RNH₂ > R₃N > NH₃ > ArNH₂
p-NO₂–C₆H₄–NH₂ is weakest amine
──────────────────────────────
ALKENE STABILITY (Zaitsev):
More substituted > less substituted
Trans > cis (same substitution)
Reaction Mechanism Flowchart — Which Mechanism Operates?
Conditions Mechanism Stereochemistry Product Rule
3° substrate + weak nucleophile, polar protic SN1 Racemization Rearrangement possible
Methyl/1° substrate + strong nucleophile, polar aprotic SN2 Inversion (100%) No rearrangement
3° substrate + weak base, polar protic, heat E1 Saytzeff (more substituted)
Any substrate + strong base, anti-periplanar geometry E2 Anti elimination Saytzeff (or Hofmann with bulky base)
Alkene + HX, no peroxide AE (Markov.) Addition to stable carbo-cation Markovnikov product
Alkene + HBr + peroxide AR (Radical) Anti-Markovnikov product
Ar–H + E⁺, Lewis acid catalyst EAS Ortho/para or meta depending on ring activation