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CHE 311 Organic Chemistry I Dr. Jerome K. Williams, Ph.D. Saint Leo University.

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Presentation on theme: "CHE 311 Organic Chemistry I Dr. Jerome K. Williams, Ph.D. Saint Leo University."— Presentation transcript:

1 CHE 311 Organic Chemistry I Dr. Jerome K. Williams, Ph.D. Saint Leo University

2 Chapter 8. Reactions of Alkenes Hydration of Alkenes Oxymercuration & Demercuration Reactions Alkoxymercuration & Demercuration Reactions Hydroboration Halogen Additions Halohydrin Reactions Hydrogenation Reactions

3 Hydration of Alkenes Addition of water to the double bond forms an alcohol. The addition follows Markovnikov’s rule. This is the reverse of the dehydration of alcohol. Uses dilute solutions of H 2 SO 4 or H 3 PO 4 to drive equilibrium toward hydration. Chapter 83

4 Mechanism for Hydration Step 1: Protonation of the double bond forms a carbocation. Step 2: Nucleophilic attack of water. Step 3: Deprotonation of the alcohol. Chapter 84

5 Orientation of Hydration The protonation follows Markovnikov’s rule: The proton adds to the less substituted end of the double bond, so the positive charge appears at the more substituted end (most stable carbocation). Chapter 85

6 Rearrangements Are Possible A methyl shift after protonation will produce the more stable tertiary carbocation. Methyl Shift: Chapter 86

7 Oxymercuration–Demercuration Reaction Markovnikov addition of water to the double bond. Milder conditions than direct hydration. No rearrangements or polymerization. Chapter 87

8 Oxymercuration Reaction Reagent is mercury(II) acetate, which dissociates slightly to form + Hg(OAc). + Hg(OAc) is the electrophile that adds to the pi bond. The intermediate is a three-membered ring called the mercurinium ion. Overall, the addition of water follows Markovnikov’s rule. Chapter 88

9 Mechanism of Oxymercuration Chapter 89

10 Stereochemistry of the Mercurinium Ion Opening Water adds to the more substituted carbon to form the Markovnikov product. Water approaches the mercurinium ion from the side opposite the ring (anti addition). Chapter 810

11 Demercuration Reaction In the demercuration reaction, a hydride furnished by the sodium borohydride (NaBH 4 ) replaces the mercuric acetate. The overall reaction gives the Markovnikov product with the hydroxy group on the most substituted carbon. Chapter 811

12 Oxymercuration–Demercuration of 3,3,-Dimethylbut-1-ene The reaction does not suffer from rearrangements because there is no carbocation intermediate. Chapter 812

13 Alkoxymercuration–Demercuration If the nucleophile is an alcohol, ROH, instead of water an ether is produced. Chapter 813

14 Show the intermediates and products that result from alkoxymercuration–demercuration of 1-methylcyclopentene, using methanol as the solvent. Mercuric acetate adds to 1-methylcyclopentene to give the cyclic mercurinium ion. This ion has a considerable amount of positive charge on the more substituted tertiary carbon atom. Methanol attacks this carbon. Reduction of the intermediate gives the Markovnikov product, 1-methoxy-1-methylcyclopentane. Solution Solved Problem 3 Chapter 814

15 Hydroboration of Alkenes H. C. Brown, of Purdue University, discovered that diborane (B 2 H 6 ) adds to alkenes with anti-Markovnikov orientation to form alkylboranes, which after oxidation give anti-Markovnikov alcohols. Brown received the Nobel Prize in Chemistry in 1979 for his work in the field of borane chemistry. Chapter 815

16 Diborane Diborane (B 2 H 6 ) is a dimer of borane and is in equilibrium with a small amount of BH 3. The complex of borane with tetrahydrofuran (BH 3THF) is the most commonly used form of borane. Chapter 816

17 Mechanism of Hydroboration Borane adds to the double bond in a single step, with boron adding to the less substituted carbon and hydrogen adding to the more highly substituted carbon. This orientation places the partial positive charge in the transition state on the more highly substituted carbon atom. Chapter 817

18 Stoichiometry of Hydroboration Three moles of alkene can react with each mole of BH 3. Chapter 818

19 Oxidation to Alcohol Oxidation of the alkyl borane with basic hydrogen peroxide produces the alcohol. Orientation is anti-Markovnikov. Chapter 819

20 Stereochemistry of Hydroboration The hydroboration step adds the hydrogen and the boron to the same side of the double bond (syn addition). When the boron is oxidized, the OH will keep the same stereochemical orientation. Chapter 820

21 Oxidation of a Trialkylborane Chapter 821

22 Show how you would convert 1-methylcyclopentanol to 2-methylcyclopentanol. Working backward, use hydroboration–oxidation to form 2-methyl cyclopentanol from 1- methylcyclopentene. The use of (1) and (2) above and below the reaction arrow indicates individual steps in a two-step sequence. The 2-methylcyclopentanol that results from this synthesis is the pure trans isomer. This stereochemical result is discussed in Section 8-7C. 1-Methylcyclopentene is the most substituted alkene that results from dehydration of 1-methylcyclopentanol. Dehydration of the alcohol would give the correct alkene. Solved Problem 4 Solution Chapter 822

23 The syn addition of BH 3 across the double bond of norbornene takes place mostly from the more accessible outside (exo) face of the double bond. Oxidation gives a product with both the hydrogen atom and the hydroxyl group in exo positions. (The less accessible inner face of the double bond is called the endo face.) A norbornene molecule labeled with deuterium is subjected to hydroboration–oxidation. Give the structures of the intermediates and products. Solution Solved Problem 5 Chapter 823

24 Addition of Halogens Cl 2, Br 2, and sometimes I 2 add to a double bond to form a vicinal dihalide. This is an anti addition of halides. Chapter 824

25 Mechanism of Halogen Addition to Alkenes The intermediate is a three-membered ring called the halonium ion. Chapter 825

26 Stereochemistry of Halogen Addition Anti stereochemistry results from the back-side attack of the nucleophile on the bromonium ion. This back-side attack assures anti stereochemistry of addition. Chapter 826

27 Examples of Stereospecificity Chapter 827

28 Bromine Test for Unsaturation Add Br 2 in CCl 4 (dark, red- brown color) to an alkene. The color quickly disappears as the bromine adds to the double bond (left-side test tube). If there is no double bond present, the brown color will remain (right side). “Decolorizing bromine” is the chemical test for the presence of a double bond. Chapter 828

29 Formation of Halohydrins If a halogen is added in the presence of water as solvent, a halohydrin is formed. Water is the nucleophile. This is a Markovnikov addition: The bromide (electrophile) will add to the less substituted carbon. Chapter 829

30 Mechanism of Halohydrin Formation Chapter 830

31 Stereochemistry of Halohydrins Because the mechanism involves a halonium ion, the stereochemistry of addition is anti, as in halogenation. Chapter 831

32 Orientation of Halohydrin Formation The more substituted carbon of the chloronium ion bears more positive charge than the less substituted carbon. Attack by water occurs on the more substituted carbon to give the Markovnikov product. Chapter 832

33 The opening of a halonium ion is driven by its electrophilic nature. The weak nucleophile attacks the carbon bearing more positive charge. Chapter 833

34 Propose a mechanism for the reaction of 1-methylcyclopentene with bromine water. 1-Methylcyclopentene reacts with bromine to give a bromonium ion. Attack by water could occur at either the secondary carbon or the tertiary carbon of the bromonium ion. Attack actually occurs at the more substituted carbon, which bears more of the positive charge. The product is formed as a racemic mixture. Solved Problem 6 Solution Chapter 834

35 When cyclohexene is treated with bromine in saturated aqueous sodium chloride, a mixture of trans-2- bromocyclohexanol and trans-1-bromo-2-chlorocyclohexane results. Propose a mechanism to account for these two products. Cyclohexene reacts with bromine to give a bromonium ion, which will react with any available nucleophile. The most abundant nucleophiles in saturated aqueous sodium chloride solution are water and chloride ions. Attack by water gives the bromohydrin, and attack by chloride gives the dihalide. Either of these attacks gives anti stereochemistry. Solved Problem 7 Solution Chapter 835

36 Catalytic Hydrogenation of Alkenes Hydrogen (H 2 ) can be added across the double bond in a process known as catalytic hydrogenation. The reaction only takes place if a catalyst is used. Chapter 836

37 Mechanism of Catalytic Hydrogenation The hydrogen and the alkene are adsorbed on the metal surface. Once adsorbed, the hydrogens insert across the same face of the double bond and the reduced product is released from the metal. The reaction has a syn stereochemistry since both hydrogens will add to the same side of the double bond. Chapter 837

38 Practice Problems: Skill Building Problems8.5-8.24

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