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Carbopalladations

The Pd—C cr-bond can be prepared from simple, unoxidized alkenes and aromatic compounds by the reaction of Pd(II) compounds. The following are typical examples. The first step of the reaction of a simple alkene with Pd(ll) and a nucleophile X or Y to form 19 is called palladation. Depending on the nucleophile, it is called oxypalladation, aminopalladation, carbopalladation, etc. The subsequent elimination of b-hydrogen produces the nucleophilic substitution product 20. The displacement of Pd with another nucleophile (X) affords the nucleophilic addition product 21 (see Chapter 3, Section 2). As an example, the oxypalladation of 4-pentenol with PdXi to afford furan 22 or 23 is shown. [Pg.13]

Facile reaction of a carbon nucleophile with an olefinic bond of COD is the first example of carbon-carbon bond formation by means of Pd. COD forms a stable complex with PdCl2. When this complex 192 is treated with malonate or acetoacetate in ether under heterogeneous conditions at room temperature in the presence of Na2C03, a facile carbopalladation takes place to give the new complex 193, formed by the introduction of malonate to COD. The complex has TT-olefin and cr-Pd bonds. By the treatment of the new complex 193 with a base, the malonate carbanion attacks the cr-Pd—C bond, affording the bicy-clo[6.1,0]-nonane 194. The complex also reacts with another molecule of malonate which attacks the rr-olefin bond to give the bicyclo[3.3.0]octane 195 by a transannulation reaction[l2.191]. The formation of 194 involves the novel cyclopropanation reaction of alkenes by nucleophilic attack of two carbanions. [Pg.47]

As a unique reaction of Pd(II), the oxidative carbonylation of alkenes is possible with Pd(ll) salts. Oxidative carbonylation is mechanistically different from the hydrocarboxylation of alkenes catalyzed by Pd(0), which is treated in Chapter 4, Section 7.1. The oxidative carbonylation in alcohol can be understood in the following way. The reaction starts by the formation of the alkoxy-carbonylpalladium 218. Carbopalladation of alkene (alkene insertion) with 218 gives 219. Then elimination of /3-hydrogen of this intermediate 219 proceeds to... [Pg.50]

The transmetallation of various organometallic compounds (Hg, Tl, Sn, B, Si, etc.) with Pd(II) generates the reactive cr-aryl, alkenyl, and alkyl Pd compounds. These carbopalladation products can be used without isolation for further reactions. Pd(II) and Hg(II) salts have similar reactivity toward alkenes and aromatic compounds, but Hg(II) salts form stable mercuration products with alkenes and aromatic rings. The mercuration products are isolated and handled easily. On the other hand, the corresponding palladation products are too reactive to be isolated. The stable mercuration products can be used for various reactions based on facile transmetallation with Pd(II) salts to generate the very reactive palladation products 399 and 400 in rim[364,365]. [Pg.79]

The carbopalladation of allylamine with malonate affords the chelating complex 510, which undergoes insertion of methyl vinyl ketone to form the amino enone 511[463]. The allylic sulfide 512 has the same chelating effect to give the five-membered complex 513 by carbopalladation[463.464]. [Pg.95]

The carbopalladation is extended to homoallylic amines and sulfides[466. Treatment of 4-dimethylamino-l-butene (518) with diethyl malonate and Li2PdCl4 in THF at room temperature leads to the oily carbopalladated complex 519, hydrogenation of which affords diethyl 4-(dimethylamino) butylmalonate (520) in an overall yield of 91%. Similarly, isopropyl 3-butenyl sulfide (521) is carbopalladated with methyl cyclopentanonecarboxylate and Li2PdCl4. Reduction of the complex affords the alkylated keto ester 522 in 96% yield. Thus functionalization of alkenes is possible by this method. [Pg.96]

Stereochemical features in the oxidative addition and the elimination of /3-hydrogen of cyclic and acyclic alkenes are different. The insertion (palladation) is syn addition. The syn addition (carbopalladation) of R—Pd—X to an acyclic alkene is followed by the syn elimination of 3-hydrogen to give the trans-a ksne 6, because free rotation of 5 is possible with the acyclic alkene. On the other hand, no rotation of the intermediate 7 is possible with a cyclic alkene and the syn elimination of /3-hydrogen gives the allylic compound 8 rather than a substituted alkene. [Pg.128]

In the alkylative cyclization of the 1,6-enyne 372 with vinyl bromide, formation of both the five-membered ring 373 by exn mode carbopalladation and isomerization of the double bonds and the six-membered ring 374 by endo mode carbopalladation are observed[269]. Their ratio depends on the catalytic species. Also, the cyclization of the 1,6-enyne 375 with /i-bromostyrene (376) affords the endo product 377. The exo mode cyclization is commonly observed in many cases, and there are two possible mechanistic explanations for that observed in these examples. One is direct endo mode carbopalladation. The other is the exo mode carbopalladation to give 378 followed by cyclopropana-tion to form 379, and the subsequent cyclopropylcarbinyl-homoallyl rearrangement affords the six-membered ring 380. Careful determination of the E or Z structure of the double bond in the cyclized product 380 is crucial for the mechanistic discussion. [Pg.180]

Intramolecular reaction can be used for polycyclization reaction[275]. In the so-called Pd-catalyzed cascade carbopalladation of the polyalkenyne 392, the first step is the oxidative addition to alkenyl iodide. Then the intramolecular alkyne insertion takes place twice, followed by the alkene insertion twice. The last step is the elimination of/3-hydrogen. In this way, the steroid skeleton 393 is constructed from the linear diynetriene 392(276]. [Pg.181]

The intramolecular carbopalladation (or insertion) of the triple bond in dimethyl 4-pentynylmalonate (215) with Pd—H species and malonate anion as shown by 216 proceeds in the presence of f-BuOK and 18-crown ether, affording the methylenecyclopentane derivatives 217 and 218, the amounts of which depend on the reaction conditions. The Pd—H species may be formed... [Pg.497]

The 2-alkylideneindanone 282 is formed by carbopalladation via ring expansion of the alkynylcyclobutenol 280 with palladium trifluoroacetate to yield an intermediate 281 and its protonolysis. 4-Oxygenated 5-alkylidenecyclopente-nones react similarly[139]. [Pg.503]

The mechanism of the PdCh-catalyzed Cope rearrangement has been studied by use of the partially deuterated 1.5-diene 53[46], The coordination of Pd(II) activates the alkene, and cyclization (carbopalladation) takes place to... [Pg.534]

Termination of cyclic carbopalladation of alkynes via caibonylative lactamization can be achieved more satisfactorily with alkenyl or aryl halides containing an oo-caiboxamido or co-sulfonamido group than with those containing an 0)-amino group. The method appears to be satisfactory for the preparation of certain piperidines (e.g., 102) <96T(52)11529>. [Pg.241]

Recently, Larock and coworkers used a domino Heck/Suzuki process for the synthesis of a multitude of tamoxifen analogues [48] (Scheme 6/1.20). In their approach, these authors used a three-component coupling reaction of readily available aryl iodides, internal alkynes and aryl boronic acids to give the expected tetrasubsti-tuted olefins in good yields. As an example, treatment of a mixture of phenyliodide, the alkyne 6/1-78 and phenylboronic acid with catalytic amounts of PdCl2(PhCN)2 gave 6/1-79 in 90% yield. In this process, substituted aryl iodides and heteroaromatic boronic acids may also be employed. It can be assumed that, after Pd°-cata-lyzed oxidative addition of the aryl iodide, a ds-carbopalladation of the internal alkyne takes place to form a vinylic palladium intermediate. This then reacts with the ate complex of the aryl boronic acid in a transmetalation, followed by a reductive elimination. [Pg.372]

Bicyclic lactones such as 6/1-101 were synthesized by Negishi and coworkers [57] using a domino Heck carbopalladation as the key step of vinyl halides as 6/1-99 to give 6/1-100. The product can be transformed into the desired lactone 6/1-101 in a few steps (Scheme 6/1.26). [Pg.375]

Tietze and coworkers [60] observed a combination of a Heck reaction and a C-H-activation by treatment of the alkyne 6/1-111 with Pd°. These authors aimed at compound 6/1-112, but 6/1-110 was obtained as a single product in high yield (Scheme 6/1.29). It can again be assumed that after oxidative addition a cis-carbopalladation of the triple bond takes place to give an alkenyl Pd intermediate which undergoes the C-H-insertion into the neighboring naphthalene and not into the aryl ether moiety. [Pg.377]

Holzapfel and coworkers [132] used the carbopalladation ofalkynes followed by a cyclization for the synthesis of tricyclic compounds as 6/1-280, derived from the sugar derivative 6/1-279 (Scheme 6/1.74). [Pg.407]

Because of their high reactivity and their low steric demand, alkynes are highly versatile partners. The resulting vinylmetal species are also important reactive entities. Accordingly, the intermolecular carbopalladation of alkynes has attracted the interest of organic chemists for years.42-45... [Pg.302]

Palladium-catalyzed cyclization of alkenes and alkynes were reported by Balme and co-workers.143 144 Intramolecular carbopalladation occurs to give polycyclic compounds. It has been shown that the nucleophile type has a large influence on the cyclization process. Both 5-exo- and 6-endo-cyclization are observed for substrates with nitrile (116 and 118) and ester (120, 122, and 124) substituents, respectively (Scheme 36). When a mixed nucleophile (CN and C02Me) is used, a mixture of 5-exo and 6-endo products is obtained. The chemoselectivity is controlled by the size of the nucleophile used. The stereochemistry of the initial double bond plays an important role on the stereoselectivity of the cyclization. (Z)-olefins (118 and 120) and (/. )-olefins (116 and 124) afford as- (119 and 121) and trans-cyclization products (117 and 123), respectively. [Pg.316]

Based on a /rarcr-acetoxypalladation of the triple bond, Lu has developed a highly enantioselective (up to 87% ee) synthesis of 7-butyrolactones with Pd(n) catalysis (Scheme 73).280 Following the initial /ra/w-acetoxy-palladation, a plausible mechanism for this sequence involves an intramolecular carbopalladation of the pendant olefin, and deacetoxypalladation instead of the common /3-hydride elimination in the final step. [Pg.335]

Insertion of palladium into the Si-Sn bond generates intermediate 428 that undergoes m-addition on the triple bond (Scheme 108). The resulting vinylpalladium 429 ensures the carbopalladation of the second triple bond followed by reductive elimination with retention of stereochemistry.376... [Pg.353]


See other pages where Carbopalladations is mentioned: [Pg.7]    [Pg.48]    [Pg.80]    [Pg.96]    [Pg.127]    [Pg.156]    [Pg.172]    [Pg.178]    [Pg.185]    [Pg.206]    [Pg.576]    [Pg.579]    [Pg.580]    [Pg.580]    [Pg.580]    [Pg.580]    [Pg.790]    [Pg.126]    [Pg.380]    [Pg.318]    [Pg.105]    [Pg.164]    [Pg.230]    [Pg.299]    [Pg.309]    [Pg.311]    [Pg.316]    [Pg.331]    [Pg.334]   


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Acylpalladation carbopalladation

Acylpalladation cascade carbopalladation

Addition reactions arene carbopalladation

Alkene derivatives carbopalladation

Alkenes carbopalladations

Alkyl derivatives carbopalladation

Alkyne derivatives carbopalladation

Alkyne derivatives cascade carbopalladation

Alkyne derivatives intermolecular carbopalladation

Alkyne derivatives intramolecular carbopalladation

Alkyne trapping, intermolecular carbopalladation

Alkynes carbopalladation, living process

Alkynes carbopalladations

Allene carbopalladation

Allene derivatives carbopalladation

Allylic derivatives carbopalladation

Allylic derivatives intermolecular carbopalladation

Allylic derivatives intramolecular carbopalladation

Amides carbopalladation

Anion capture alkene carbopalladation

Arenes carbopalladation

Arenes cascade carbopalladation

Aryl derivatives carbopalladation

Asymmetric reactions carbopalladation, natural products synthesis

Asymmetric reactions intermolecular carbopalladation

Asymmetric reactions intramolecular carbopalladation

Benzyne carbopalladation

Boronic carbopalladation

Carbometallation carbopalladation

Carbon nucleophiles carbopalladation

Carbon-palladium bonds carbopalladation

Carbonyl compounds carbopalladation

Carbonylation carbopalladation trapping

Carbopalladation

Carbopalladation 1,6-diynes

Carbopalladation 3-hydride elimination

Carbopalladation Carbon-palladium bonds Heck reaction

Carbopalladation aldehyde trapping

Carbopalladation alkene termination

Carbopalladation alkenes

Carbopalladation alkenyl ethers

Carbopalladation alkenylsilane

Carbopalladation alkylation

Carbopalladation alkyne termination

Carbopalladation alkynes

Carbopalladation allene termination

Carbopalladation allenes

Carbopalladation amine compounds

Carbopalladation and aminopalladation

Carbopalladation arene termination

Carbopalladation arylation

Carbopalladation carbon-palladium formation

Carbopalladation carbon-palladium single bonds

Carbopalladation carbonylative lactonization/lactamization

Carbopalladation complexes

Carbopalladation cyclic

Carbopalladation decarbopalladation

Carbopalladation domino reactions

Carbopalladation enamides

Carbopalladation formate anions

Carbopalladation hydride compounds

Carbopalladation hydride termination

Carbopalladation inter-intramolecular cascade carbopalladations

Carbopalladation inter-intramolecular reactions

Carbopalladation intermolecular nucleophilic trapping

Carbopalladation intermolecular reaction

Carbopalladation intermolecular trapping

Carbopalladation intra-intermolecular cascade carbopalladations

Carbopalladation intra-intermolecular reactions

Carbopalladation intramolecular cyclization

Carbopalladation intramolecular nucleophilic trapping

Carbopalladation intramolecular trapping

Carbopalladation ketone trapping

Carbopalladation mechanisms

Carbopalladation nitrile trapping

Carbopalladation nitrogen nucleophiles

Carbopalladation nucleophilic substitution

Carbopalladation nucleophilic trapping

Carbopalladation of alkynes

Carbopalladation of allene

Carbopalladation oxygen nucleophiles

Carbopalladation palladium salts

Carbopalladation reactions in solid-phase syntheses

Carbopalladation reductive elimination

Carbopalladation regiochemistry

Carbopalladation related compounds

Carbopalladation removal

Carbopalladation simple alkenes

Carbopalladation stable reactions

Carbopalladation stereochemistry

Carbopalladation synthetic applications

Carbopalladation trapping

Carbopalladation, approach

Carbopalladation, cascade

Carbopalladation, norbornene

Carbopalladation-cross-coupling tandem

Carbopalladative insertion

Carbopalladative mechanism

Cascade carbopalladation alkene termination

Cascade carbopalladation alkyne termination

Cascade carbopalladation allene termination

Cascade carbopalladation arene termination

Cascade carbopalladation carbon nucleophiles

Cascade carbopalladation hydride termination

Cascade carbopalladation inter-intramolecular reactions

Cascade carbopalladation intra-intermolecular reactions

Cascade carbopalladation nitrogen nucleophiles

Cascade carbopalladation nucleophilic termination

Cascade carbopalladation oxygen nucleophiles

Cascade carbopalladation reactions

Cascade carbopalladation termination

Cascade carbopalladation, intra-intermolecular

Cascade cyclizations carbopalladation

Cascades of Carbopalladations Followed by Pericyclic Reactions

Catellani 7 Carbopalladation of Allenes

Cyclization carbopalladation

Cyclization multiple carbopalladative

Cyclization single carbopalladation

Cyclization via Double and Multiple Carbopalladation Reactions

Cyclopropanes alkene carbopalladation

Diels-Alder reactions cascade carbopalladation

Dimerization reactions carbopalladation

Domino cyclization carbopalladation

Domino cyclization intramolecular carbopalladation

Electron-withdrawing groups carbopalladation

Electrophilic reactions alkyne carbopalladation

Enantioselective carbopalladation

Enantioselectivity intramolecular carbopalladation

Endo cyclization intramolecular carbopalladation

Enynes intramolecular carbopalladation

Esterification carbopalladation

Ethers carbopalladation

Formate derivatives alkyne carbopalladation

Heck reaction alkene carbopalladation

Heck reaction alkyne carbopalladation

Heck reaction carbopalladation

Heck reaction cascade carbopalladation

Heck reaction heterocyclic carbopalladation

Heck reaction intramolecular carbopalladation

Heck reaction natural products carbopalladation

Heterocyclic synthesis, intramolecular carbopalladation

Inter-intramolecular cascade carbopalladation

Inter-intramolecular cascade carbopalladations

Inter-intramolecular cascade carbopalladations alkene termination

Intermolecular Carbopalladation of Arynes

Intermolecular carbopalladation

Intermolecular reactions cascade carbopalladation

Intramolecular carbopalladation reactions

Intramolecular cascade carbopalladation, alkene

Isomerization intramolecular carbopalladation

Ketones carbopalladation

Lactone synthesis carbopalladation

Mizoroki-Heck reaction carbopalladation

Natural product synthesis carbopalladation

Natural product synthesis cascade carbopalladation

Norbomene carbopalladation

Oliver Reiser 10 Carbopalladation via Palladacyclopropanes and Palladacyclopropenes

Organopalladium carbopalladation

Organopalladium carbopalladation, palladium®) complexes

Oxygen nucleophiles cascade carbopalladation termination

Palladacycles carbopalladation

Palladium-Catalyzed Cascade Carbopalladation Termination with Alkenes, Arenes, and Related rr-Bond Systems

Palladium-Catalyzed Cyclization Involving Carbopalladation of Arynes

Palladium-Catalyzed Cyclization via Carbopalladation

Palladium®) complexes carbopalladation

Palladium®) complexes hydropalladation/carbopalladation

Reaction mechanism allene carbopalladation

Reductive elimination alkene carbopalladation

Regioselectivity carbopalladation

Ring closures carbopalladative

Ring systems carbopalladation

Ring systems cascade carbopalladation

Sandro Cacchi and Giancarlo Fabrizi 6 Carbopalladation of Alkynes Followed by Trapping with Electrophiles

Shengming Ma 8 Synthesis of Natural Products via Carbopalladation

Shibasaki and Futoshi Miyazaki 4 Carbopalladation of Alkenes not Accompanied by ehydropalladation

Side reactions alkene carbopalladation

Side reactions carbopalladation

Subject zipper”-mode, carbopalladation

Tandem reactions carbopalladation

Tetrahydrofurans carbopalladation

The Carbopalladation Mechanism

Vinyl halides intramolecular carbopalladation

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