ORGANIC CHEMISTRY 1 • ALKENE AND ALKYNE ADDITION REACTIONS

Electrophilic Addition to Alkenes

How electron-rich π bonds react with electrophiles to form new σ bonds through carbocation intermediates.

Historical Context & Motivation

The chemistry of alkenes has captivated organic chemists since the mid-nineteenth century, when the extraordinary reactivity of carbon–carbon double bonds first demanded systematic explanation. Early chemists recognized that compounds containing unsaturation — that is, fewer hydrogen atoms than their saturated counterparts — underwent reactions that were mechanistically distinct from the substitution reactions characteristic of alkyl halides and alcohols. The double bond was clearly an electron-rich site, yet chemists lacked a coherent framework for predicting which reagents would attack it, what products would form, and why certain regiochemical outcomes predominated. The quest to answer these questions gave rise to the concept of electrophilic addition — one of the most fundamental reaction classes in all of organic chemistry.

1869
Markovnikov's Rule
Vladimir Markovnikov published his empirical observation that during the addition of hydrogen halides to alkenes, the hydrogen atom adds to the carbon bearing the greater number of hydrogens. This rule, initially stated without mechanistic justification, became one of the most cited principles in organic chemistry.
1920s
Electronic Theory of Reactivity
Sir Robert Robinson and Christopher Ingold developed the electronic theory of organic reactions, introducing concepts of nucleophilicity and electrophilicity. Their framework explained Markovnikov's rule in terms of carbocation stability and electron donation by alkyl groups.
1933
Kharasch's Anti-Markovnikov Addition
Morris Kharasch demonstrated that in the presence of peroxides, HBr adds to alkenes in an anti-Markovnikov fashion via a radical chain mechanism, revealing that reaction conditions can fundamentally alter regiochemistry.
1950s–1960s
Mechanistic Elucidation
George Olah's pioneering work on stable carbocations (for which he received the 1994 Nobel Prize), combined with kinetic isotope effect studies and stereochemical analyses, provided direct evidence for the stepwise mechanism of electrophilic addition through discrete cationic intermediates.
1970s–Present
Computational and Synthetic Applications
Modern computational chemistry has confirmed the energetics of electrophilic addition pathways, while the reaction remains indispensable in industrial processes such as polymerization, petroleum refining, and pharmaceutical synthesis.

The central question motivating this lesson is deceptively simple: when an electrophile encounters the π bond of an alkene, how does bond-breaking and bond-forming occur, what governs the regiochemistry and stereochemistry of the products, and how can we leverage this understanding to predict outcomes for any electrophilic addition reaction?

Core Principles & Definitions

Electrophilic addition to alkenes rests upon a set of interconnected principles that govern reactivity, selectivity, and product distribution. The π bond of an alkene serves as the electron-rich species — it is a region of high electron density located above and below the plane of the doubly bonded carbons. Unlike a σ bond, the π bond is relatively weak (approximately 264 kJ/mol for the π component alone) and exposed, making it an attractive target for electron-deficient species. When an electrophile (from the Greek for "electron-loving") approaches the alkene, the π electrons attack the electrophile, initiating the addition sequence. Understanding the following foundational ideas is essential for mastering this reaction class.

1

The π Bond as Nucleophile

The electron density of the C=C π bond lies above and below the molecular plane, accessible to electrophiles. The alkene functions as a Lewis base, donating its π electrons to form a new σ bond with the incoming electrophile.
2

Carbocation Intermediates

Most electrophilic additions proceed through a carbocation intermediate formed after the electrophile bonds to one carbon. The stability order — tertiary > secondary > primary — dictates regiochemistry via Markovnikov's rule.
3

Markovnikov's Rule

In the addition of HX to an unsymmetrical alkene, the hydrogen adds to the less substituted carbon and the halide to the more substituted carbon, producing the more stable carbocation intermediate.
4

Stereochemical Outcomes

The geometry of addition — syn or anti — depends on the mechanism. Halogenation proceeds via anti addition through a cyclic halonium ion, while hydration typically gives a mixture due to the planar carbocation intermediate.
5

Hammond's Postulate

The transition state of an endothermic step resembles the product of that step. Since carbocation formation is rate-determining, the transition state resembles the carbocation, and factors stabilizing the cation lower the activation energy.
KEY TAKEAWAY
Think of the alkene π bond as a loaded spring holding extra energy in a relatively weak, exposed position. An electrophile is like a hand pressing on that spring — it releases the stored energy by converting the weak π bond into two strong σ bonds. The "spring" preferentially releases toward the pathway that passes through the most stable intermediate, much like water flowing downhill preferentially follows the path of least resistance. This is why Markovnikov's rule works: the reaction channel that generates the more stable carbocation has a lower-energy transition state and is therefore kinetically favored.

The General Mechanism — Visualized

The general mechanism of electrophilic addition to an alkene proceeds in two discrete steps. In Step 1, the π electrons of the alkene attack the electrophile (E⁺), forming a new C–E σ bond and generating a carbocation intermediate at the adjacent carbon. In Step 2, a nucleophile (Nu⁻) attacks the electron-deficient carbocation, completing the addition and forming the second new σ bond. The diagram below illustrates this two-step pathway using the addition of HBr to propene as a representative example.

The two-step mechanism of HBr addition to propene. Step 1 (rate-determining): the π electrons attack the electrophilic hydrogen of HBr, forming a secondary carbocation at C-2 (Markovnikov regiochemistry). Step 2 (fast): bromide ion attacks the carbocation, yielding 2-bromopropane as the major product. The bottom panel illustrates why the primary carbocation pathway is disfavored.

Several features of this diagram merit careful attention. First, the rate-determining step is the formation of the carbocation — this is the step with the highest activation energy, and it is where regiochemistry is decided. Second, the nucleophilic capture in Step 2 is fast because the carbocation is a potent electrophile that reacts with the first available nucleophile. Third, note that the preference for the Markovnikov product is ultimately a kinetic phenomenon: the pathway through the more stable carbocation has a lower activation energy. By Hammond's postulate, since carbocation formation is endothermic, the transition state resembles the carbocation, and factors that stabilize the carbocation (hyperconjugation, induction) also stabilize the transition state leading to it.

Mechanistic Details & Energy Considerations

While electrophilic addition does not lend itself to a single governing mathematical equation in the way that rate laws or thermodynamic relationships do, the energetics and kinetics of the process are quantifiable and deeply informative. The reaction coordinate diagram captures the essential features: a higher-energy first transition state (corresponding to carbocation formation) followed by a lower-energy second transition state (nucleophilic capture), with the carbocation occupying a local energy minimum between them.

RATE LAW FOR HX ADDITION
Rate = k[alkene][HX]
The reaction is second-order overall: first-order in alkene and first-order in HX. This is consistent with both the alkene and HX being involved in the rate-determining step. In concentrated acid solutions, the kinetics may become more complex due to ion-pairing effects.
RELATIVE CARBOCATION STABILITY
3° > 2° > 1° > methyl (CH₃⁺)
Carbocation stability increases with the number of alkyl substituents on the positively charged carbon. Alkyl groups stabilize carbocations through hyperconjugation (σ → p orbital donation) and inductive effects (electron donation through σ bonds). A typical stabilization energy difference between a secondary and primary carbocation is approximately 55–70 kJ/mol.
THERMODYNAMIC DRIVING FORCE
ΔH°rxn ≈ D(π bond broken) − D(σ bonds formed)
The overall enthalpy change is favorable because the two new σ bonds formed (C–H and C–X, worth roughly 410 + 340 = 750 kJ/mol for HBr) are stronger than the π bond broken (≈264 kJ/mol). The net exothermicity is approximately −50 to −80 kJ/mol, making electrophilic addition thermodynamically spontaneous under standard conditions.

The mechanistic picture becomes richer when we consider variations in the electrophile. In halogenation (addition of Br₂ or Cl₂), the mechanism proceeds through a three-membered halonium ion intermediate rather than an open carbocation. The bromonium ion, for example, is a cyclic species in which the bromine atom bridges both carbons of the former double bond, preventing nucleophilic attack from the same face. This bridging enforces anti addition stereochemistry, as the incoming nucleophile (Br⁻) must attack from the opposite face of the ring. In contrast, acid-catalyzed hydration proceeds through an open carbocation, allowing nucleophilic attack from either face and producing a mixture of stereoisomers when applicable.

⚠️ Carbocation Rearrangements
When the initially formed carbocation is primary or secondary, a 1,2-hydride shift or 1,2-methyl shift may occur if it produces a more stable (more substituted) carbocation. For example, addition of HCl to 3,3-dimethyl-1-butene initially generates a 2° carbocation, which rearranges via a 1,2-methyl shift to a 3° carbocation before chloride capture. Always check for rearrangement possibilities when predicting products.

Classification of Common Electrophilic Additions

Electrophilic addition to alkenes is not a single reaction but a family of related transformations, each defined by the identity of the electrophile and the resulting functional group installed. The following diagram and table organize the most important variants by reagent, mechanism, regiochemistry, and stereochemistry.

Overview of the major addition reactions of alkenes, organized by reagent and mechanistic type. The central alkene branches into six reaction pathways. Electrophilic additions (solid-bordered boxes) are contrasted with hydroboration-oxidation and catalytic hydrogenation (dashed connections), which proceed by different mechanisms but are commonly tested alongside electrophilic additions.
Summary of common electrophilic addition reactions, their regiochemistry, stereochemistry, and key intermediates
ReactionReagentRegiochemistryStereochemistryKey Intermediate
HydrohalogenationHCl, HBr, HIMarkovnikovNon-stereospecificCarbocation (open)
Acid-catalyzed hydrationH₃O⁺ / H₂OMarkovnikovNon-stereospecificCarbocation (open)
HalogenationBr₂, Cl₂N/A (symmetric)Anti additionHalonium ion (bridged)
Halohydrin formationX₂ / H₂OMarkovnikov (OH on more sub. C)Anti additionHalonium ion (bridged)
Oxymercuration–demercurationHg(OAc)₂/H₂O, NaBH₄MarkovnikovNon-stereospecificMercurinium ion (bridged)

Worked Example — Addition of HBr to 2-Methylpropene

Let us walk through the complete analysis of electrophilic addition of HBr to 2-methylpropene (isobutylene), CH₂=C(CH₃)₂. We will determine the major product, justify the regiochemistry, and comment on stereochemistry.

Predict the major product of 2-methylpropene + HBr
1
Step 1 — Identify the Substrate and ElectrophileThe substrate is 2-methylpropene, which contains a C=C double bond between C-1 (=CH₂) and C-2 (=C(CH₃)₂). The electrophile is HBr, which is polarized with hydrogen bearing a partial positive charge (δ⁺) and bromine bearing a partial negative charge (δ⁻). The π bond will act as the nucleophile, attacking the electrophilic hydrogen.
2
Step 2 — Apply Markovnikov's Rule to Determine RegiochemistryTwo possible carbocations can form. If H⁺ adds to C-2 (the more substituted carbon), a primary carbocation forms at C-1 — this is disfavored. If H⁺ adds to C-1 (the less substituted carbon, which already bears more hydrogens), a tertiary carbocation forms at C-2, where three methyl groups stabilize the positive charge through hyperconjugation. By Markovnikov's rule and Hammond's postulate, the pathway through the tertiary carbocation is overwhelmingly favored.
H adds to C-1; 3° carbocation forms at C-2
3
Step 3 — Draw the Carbocation IntermediateThe intermediate is (CH₃)₃C⁺ — the tert-butyl carbocation. This is one of the most stable simple carbocations possible, with three methyl groups providing extensive hyperconjugative stabilization. No rearrangement is needed because the carbocation is already tertiary.
4
Step 4 — Nucleophilic Capture by BromideBromide (Br⁻) attacks the positively charged tertiary carbon from either face of the planar sp² center. Since the carbocation is planar and there is no bridging group to block one face, both faces are equally accessible, and a racemic mixture would result if a stereocenter were created. In this case, the product is 2-bromo-2-methylpropane (tert-butyl bromide), (CH₃)₃CBr, which has no stereocenter.
Major product: 2-bromo-2-methylpropane, (CH₃)₃CBr
5
Step 5 — Verify and Comment on StereochemistryThe product (CH₃)₃CBr possesses no stereocenters because the carbon bearing bromine is bonded to three identical methyl groups. Therefore, stereochemistry is not relevant in this particular example. However, if the substrate were a trisubstituted alkene with different groups (e.g., 2-butene), the planar carbocation intermediate would allow attack from both faces, leading to a racemic mixture if a new stereocenter is created.
No stereocenter; single constitutional isomer formed as the Markovnikov product.

Electrophilic Addition — Strengths, Limitations, and Comparisons

Electrophilic addition is an extraordinarily versatile reaction class, but it is not without limitations. The reliance on carbocation intermediates introduces the possibility of rearrangements that can divert the reaction toward unexpected products. Furthermore, the stereochemical outcome depends on the nature of the intermediate — open carbocations give mixtures, while bridged intermediates enforce stereoselectivity. The following table compares the strengths and limitations of the major variants.

Comparison of strengths and limitations across electrophilic addition variants
FeatureStrengthLimitation
Regiochemistry (Markovnikov)Predictable via carbocation stability; yields the more substituted product, which is often synthetically usefulCannot directly produce anti-Markovnikov products; requires alternative methods (e.g., hydroboration) for that regiochemistry
Carbocation rearrangementsCan be exploited to access ring-expanded or more substituted products (e.g., in terpene biosynthesis)Unpredicted rearrangements may lead to unintended products; must always check for hydride/methyl shifts
StereochemistryHalogenation gives stereospecific anti addition via the halonium ion, enabling predictable diastereomer formationHX and hydration via open carbocations produce racemic mixtures; no control over facial selectivity
Functional group toleranceSimple reagents (HX, X₂, H₂O/H⁺) are readily available and inexpensiveStrong acid conditions may be incompatible with acid-sensitive functional groups elsewhere in the molecule
Oxymercuration–demercurationGives Markovnikov alcohol with no rearrangements; mild conditions; complementary to acid-catalyzed hydrationUses toxic mercury reagent; not atom-economical; limited to alcohol formation
KEY TAKEAWAY
Think of the different electrophilic addition reactions as different tools in a toolbox. Hydrohalogenation (HX) and acid-catalyzed hydration are the basic hammers — reliable and widely applicable, but limited in stereochemical control and vulnerable to rearrangements. Halogenation (X₂) is a precision screwdriver — it gives you clean anti stereochemistry through the halonium bridge. Oxymercuration is the specialized wrench — it delivers Markovnikov alcohols without rearrangement, at the cost of using a toxic metal. The expert synthetic chemist selects the right tool based on the desired regiochemistry, stereochemistry, and functional group compatibility of the target product.

Connections to Advanced Organic Reactions

The principles governing electrophilic addition to alkenes form the conceptual foundation for a wide array of more advanced transformations encountered in Organic Chemistry 2 and beyond. The concept of a cationic intermediate reappears in electrophilic aromatic substitution (EAS), where the benzene ring acts as the nucleophile and a σ complex (arenium ion) serves as the cationic intermediate. The bridged halonium ion mechanism foreshadows the epoxidation of alkenes by peracids, which generates a three-membered oxirane ring by an analogous concerted mechanism. Furthermore, the polymerization of alkenes — the basis of the plastics industry — is simply repeated electrophilic (or radical) addition, where each newly formed carbocation attacks the next alkene monomer in a chain-growth process.

Connections between electrophilic addition concepts and advanced organic chemistry topics
Concept in This LessonAdvanced Extension
Carbocation intermediates and Markovnikov's ruleElectrophilic aromatic substitution (σ complex), cation-π interactions in biochemistry, terpene biosynthesis cascades
Halonium ion (bridged intermediate)Epoxidation (mCPBA), Sharpless asymmetric epoxidation, neighboring group participation in SN reactions
Carbocation rearrangements (1,2-shifts)Wagner–Meerwein rearrangements, pinacol rearrangement, semipinacol rearrangement in natural product synthesis
Anti-Markovnikov addition (radical HBr)Radical polymerization, atom-transfer radical polymerization (ATRP), radical cyclization in total synthesis
Stereochemistry of addition (syn vs. anti)Asymmetric catalysis, chiral auxiliaries, enantioselective hydroboration, Jacobsen epoxidation

As you advance in organic chemistry, you will find that the mechanistic logic of electrophilic addition — the interplay of electronic effects, steric effects, and orbital overlap in determining selectivity — generalizes powerfully. The ability to predict regiochemistry from intermediate stability, stereochemistry from intermediate geometry, and product distribution from transition state theory is a transferable skill that underpins modern retrosynthetic analysis and rational drug design.

Practice Problems

PROBLEM 1CONCEPTUAL
Explain why the addition of HBr to propene produces predominantly 2-bromopropane rather than 1-bromopropane. In your explanation, reference the nature of the intermediate, the stability ordering of carbocations, and Hammond's postulate.
PROBLEM 2BASIC CALCULATION
Predict the major product of the reaction of 1-methylcyclohexene with HCl. Draw the product and identify the type of carbocation intermediate formed.
PROBLEM 3INTERMEDIATE
When 3,3-dimethyl-1-butene is treated with HBr, the major product is 2-bromo-2,3-dimethylbutane rather than the expected 2-bromo-3,3-dimethylbutane. Account for this observation by drawing the mechanism, including any rearrangement steps.
PROBLEM 4APPLIED
A synthetic chemist needs to convert cyclohexene into trans-1,2-dibromocyclohexane with high stereoselectivity. Which reagent should be used, what intermediate is formed, and why does this particular reagent enforce the observed stereochemistry? Would the same stereochemical outcome result from a two-step sequence using HBr followed by NBS?
PROBLEM 5CRITICAL THINKING
Consider the reaction of 2-methylpropene with HBr under two different conditions: (a) in the absence of peroxides, and (b) in the presence of a radical initiator such as benzoyl peroxide. Predict the major product in each case, explain the mechanistic basis for the difference in regiochemistry, and discuss why only HBr (and not HCl or HI) shows this peroxide effect.

Electrophilic Addition to Alkenes — Summary

Electrophilic addition is the signature reaction of alkenes, in which the electron-rich π bond donates its electrons to an electrophile, breaking the double bond and forming two new σ bonds. The reaction typically proceeds through a carbocation intermediate (for HX and H₃O⁺/H₂O) or a bridged halonium ion (for X₂ and X₂/H₂O). Markovnikov's rule governs regiochemistry by predicting that the electrophile adds to form the more stable carbocation intermediate — a kinetic preference explained by Hammond's postulate.

Stereochemistry depends on the intermediate geometry: open carbocations allow both syn and anti attack (yielding racemic mixtures at new stereocenters), whereas bridged intermediates enforce anti addition. Always check for carbocation rearrangements (1,2-hydride or methyl shifts) when a more stable cation is accessible. Alternative reagents such as oxymercuration–demercuration provide Markovnikov alcohols without rearrangement, while hydroboration–oxidation delivers anti-Markovnikov alcohols with syn stereochemistry. Mastery of these mechanistic patterns — the identity of the electrophile, the nature of the intermediate, and the consequences for regiochemistry and stereochemistry — equips you to predict products, avoid pitfalls, and select the optimal synthetic strategy.

Varsity Tutors • Organic Chemistry 1 • Electrophilic Addition to Alkenes