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Cyclopentenes—

Computer Project 5-2, The result for hydrogenation of cyclopentene differs from that foi ethene by an amount that is well outside the expected error foi MM calculations. Suggest a reason for this. [Pg.164]

A highly diastereoselective alkcnylation of c/s-4-cyclopentene-l,3>diols has been achieved with 0-protected (Z)-l-iodo-l-octen-3-ols and palladium catalyst (S. Torii, 1989). The ( )-isomers yielded 1 1 mixtures of diastcrcomcric products. The (Z)-alkenylpalladium intermediate is thought to undergo sy/i-addition to the less crowded face of the prochiral cyclopentene followed by syn-elimination of a hydropalladium intermediate. [Pg.43]

Cyclopentene-l-carboxaldehydes are obtained from cyclohexene precursors by the sequence cyclohexene - cyclohexane-1,2-diol -> open-chain dialdehyde - cyclopentane aldol. The main advantage of this ring contraction procedure is, that the regio-and stereoselectivity of the Diels-Alder synthesis of cyclohexene derivatives can be transferred to cyclopentane synthesis (G. Stork, 1953 G. BUchi, 1968). [Pg.81]

The C—C double bond in the cyclopentene ring can be cleaved by the osmium tetroxide-periodate procedure or by photooxygenation. The methoxalyl group on C-17 can, as a typical a-dicarbonyl system, be split off with strong base and is replaced by a proton. Since this elimination occurs with retention of the most stable configuration of the cyclization equi-hbrium, the substituents at C-17 and C-18 are located trans to one another. The critical introduction of both hydrogens was thus achieved regio- and stereoselectively. [Pg.259]

Cyclopentene derivatives with carboxylic acid side-chains can be stereoselectively hydroxy-lated by the iodolactonization procedure (E.J. Corey, 1969, 1970). To the trisubstituted cyclopentene described on p. 210 a large iodine cation is added stereoselectively to the less hindered -side of the 9,10 double bond. Lactone formation occurs on the intermediate iod-onium ion specifically at C-9ot. Later the iodine is reductively removed with tri-n-butyltin hydride. The cyclopentane ring now bears all oxygen and carbon substituents in the right stereochemistry, and the carbon chains can be built starting from the C-8 and C-12 substit""" ... [Pg.275]

A conceptually surprising and new route to prostaglandins was found and evaluated by C.R. Johnson in 1988. It involves the simple idea to add alkenylcopper reagents stereo-selectively to a protected chiral 4,5-dihydroxy-2-cyclopenten-l-one and to complete the synthesis of the trisubstituted cyclopentanone by stereoselective allylation of the resulting enolate. [Pg.276]

The oxidation of simple internal alkenes is very slow. The clean selectiv oxidation of a terminal double bond in 40, even in the presence of an internt double bond, is possible under normal conditions[89,90]. The oxidation c cyclic alkenes is difficult, but can be carried out under selected condition Addition of strong mineral acids such as HCIO4, H2S04 and HBF4 accelerate the oxidation of cyclohexene and cyclopentene[48,91], A catalyst system 0 PdSO4-H3PM06W6Oii(j [92] or PdCF-CuCF m EtOH is used for the oxidatioi of cyclopentene and cyclohexene[93]. [Pg.28]

The dicarboxylation of cyclic alkenes is a useful reaction. All-c.vo-methyl-7-oxabicyclo(2.2.1]heptane-2,3,5,6-tetracarboxylate (233) was prepared from the cyclic alkene 232 using Pd on carbon and CuCh in MeOH at room temperature with high diastereoselectivity[216]. The dicarbonylation of cyclopentene... [Pg.52]

Diacetates of 1,4-butenediol derivatives are useful for double allylation to give cyclic compounds. l,4-Diacetoxy-2-butene (126) reacts with the cyclohexanone enamine 125 to give bicyclo[4.3.1]decenone (127) and vinylbicy-clo[3.2.1]octanone (128)[85,86]. The reaction of the 3-ketoglutarate 130 with cij-cyclopentene-3,5-diacetate (129) affords the furan derivative 131 [87]. The C- and 0-allylations of ambident lithium [(phenylsulfonyl)methylene]nitronate (132) with 129 give isoxazoline-2-oxide 133, which is converted into c -3-hydroxy-4-cyanocyclopentene (134)[S8]. Similarly, chiral m-3-amino-4-hyd-roxycyclopentene was prepared by the cyclization of yV-tosylcarbamate[89]. [Pg.308]

Hydrosilylation of I-vinyl-1-cyclohexene (77) proceeds stereoselectively to give the (Z)-l-ethylidene-2-silylcyclohexane 78, which is converted into (Z)-2-ethylidenecyclohe.xanol (79)[74]. Hydrosilylation of cyclopentadiene affords the 3-silylated 1-cyclopentene 80. which is an allylic silane and used for further transformations[75.75a]. Cyclization of the 1,3,8, lO-undecatetraene system in the di(2.4-pentadienyl)malonate 69 via hydrosilylation gives the cyclopentane derivative 81. which corresponds to 2.6-octadienylsilanc[l8,76]. [Pg.435]

The carbonylation of dehydrolinalyl methyl carbonate (35) at room temperature affords the cyclopentene derivative 37 formed by the ene reaction of... [Pg.458]

The intramolecular [In + 2 rr] cycloaddition ofmethylenecyclopropane with the alkyne in 117 using isopropyl phosphite as a ligand affords the methylene-cyclopentene 118[55]. [Pg.486]

The cyclohexadiene derivative 130 was obtained by the co-cyclization of DMAD with strained alkenes such as norbornene catalyzed by 75[63], However, the linear 2 1 adduct 131 of an alkene and DMAD was obtained selectively using bis(maleic anhydride)(norbornene)palladium (124)[64] as a cat-alyst[65], A similar reaction of allyl alcohol with DMAD is catalyzed by the catalyst 123 to give the linear adducts 132 and 133[66], Reaction of a vinyl ether with DMAD gives the cyclopentene derivatives 134 and 135 as 2 I adducts, and a cyclooctadiene derivative, although the selectivity is not high[67]. [Pg.487]

Write structural formulas or build molecular models and give the lUPAC names of all the monochloro substituted derivatives of cyclopentene... [Pg.190]

Step 2 of the mechanism m Figure 6 12 is a nucleophilic attack by Br at one of the carbons of the cyclic bromonium ion For reasons that will be explained m Chapter 8 reactions of this type normally take place via a transition state m which the nude ophile approaches carbon from the side opposite the bond that is to be broken Recall mg that the vicinal dibromide formed from cyclopentene is exclusively the trans stereoisomer we see that attack by Br from the side opposite the C—Br bond of the bromonium ion intermediate can give only trans 1 2 dibromocyclopentane m accordance with the experimental observations... [Pg.258]

FIGURE 6 13 Mechanism of bromohydrin formation from cyclopentene A bridged bromonium ion is formed and is attacked by a water molecule from the side opposite the carbon-bromine bond The bromine and the hydroxyl group are trans to each other in the product... [Pg.259]

Show by wnting a suitable sequence of chemical equations how to prepare each of the fol lowing compounds from cyclopentene and any necessary organic or inorganic reagents... [Pg.419]


See other pages where Cyclopentenes— is mentioned: [Pg.91]    [Pg.376]    [Pg.436]    [Pg.437]    [Pg.438]    [Pg.439]    [Pg.164]    [Pg.141]    [Pg.258]    [Pg.273]    [Pg.23]    [Pg.95]    [Pg.156]    [Pg.300]    [Pg.460]    [Pg.481]    [Pg.516]    [Pg.521]    [Pg.190]    [Pg.200]    [Pg.252]    [Pg.256]    [Pg.259]    [Pg.360]    [Pg.617]    [Pg.673]    [Pg.782]    [Pg.822]    [Pg.825]   
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1 - Vinyl-1 -cyclopentene

1 -Cyclopentene-1 -carboxaldehydes

1- Cyclopentene, 1,2-disubstituted

1- Cyclopentene, l-acetyl-2-methylsynthesis

1- Cyclopentenes, 1,2-disubstituted

1- cyclopentene, reaction with

1-Phenyl-1-cyclopentene

1-cyclopentene-l-carboxylic acid

1.2- Dimethyl-cyclopentene

2- -2-cyclopentene-1 acetaldehyde

2- 4-cyclopentene-1.3-dione

2- Alkylidene-3-cyclopenten-1 -ones

2- Cyclopenten-l-one, 2,5-dimethyl-3phenyl

2- Cyclopentene-1-malonic acid, diethyl

2- Cyclopentene-1-malonic acid, diethyl ESTER

2- Hydroxy-2-cyclopenten-1 -one

2- Methyl-2-cyclopentene-1 -one

2-Amino-1 -cyclopentene-1 -dithiocarboxylic

2-CYCLOPENTEN-l-ONE , 3-METHYL-2-PENTYL

2-Cyclopenten-1 -one

2-Cyclopenten-l-one, 2,3-dihydroxy-,

2-Cyclopenten-l-one. 3-methyl-2-

2-Cyclopentene-1 -acetic acid

2-Cyclopentene-1,4-dione aluminum hydrides

2-Cyclopentene-1,4-dione reduction

2-Cyclopentene-1-one

2-Cyclopentene-l-carbonitrile

2-Pentyl-2-cyclopenten-1 -one

2-Phenyl-2-cyclopentene-1,4-dione

2-cyclopentene-l,4-diol

3- CYCLOPENTENE-1-CARBOXYLIC ACID

3- Cyclopentene-l,2-diones

3- Methyl-1-phenyl-1-phospha-3-cyCLOPENTENE 1-OXIDE

3- Methyl-2-cyclopenten-2-ol-1 -one

3- Methyl-2-cyclopenten-2-ol-l-one

3- Methyl-2-pentyl-2-cyclopenten-1 -one

3- cyclopentene 1-alkyne

3-Cyclopenten-l -ones

3-Cyclopentene-1,1 -dicarboxylic acid

4- acetoxy-2-cyclopenten-l-one

4-cyclopentene-l,3-dione

4.5- Dihydroxy-4-cyclopentene-1,23-trione

4.5- Dihydroxy-4-cyclopentene-l,2,3-trione

Acetylene/cyclopentene

Alternating ethylene/cyclopentene copolymers

C.H. Cyclopentene

CYCLOPENTENE.15(Vol

Cis-2-Cyclopentene-l,4-diol

Coupling cyclopentene

Cycloaddition precursor cyclopentene

Cycloaddition precursor cyclopentenes

Cycloadditions cyclopentene

Cycloalkenes Cyclohexenes, Cyclopentenes

Cycloalkenes Cyclopentenes, Cyclopropenes

Cycloalkenes cyclopentene

Cyclodec-5-en-l-one Cyclopentene

Cyclohexenone, from cyclopentene

Cyclopenten

Cyclopenten

Cyclopenten-3-yl cation

Cyclopentene

Cyclopentene

Cyclopentene 1,6-alkadiene

Cyclopentene 3,6-diacetoxy

Cyclopentene Wacker process with heteropolyacids

Cyclopentene acetals

Cyclopentene acetate

Cyclopentene addition polymerization

Cyclopentene alkene

Cyclopentene annelation

Cyclopentene annulation

Cyclopentene annulations

Cyclopentene annulations, Michael addition

Cyclopentene bromination

Cyclopentene bromine addition

Cyclopentene carbaldehyde

Cyclopentene carbaldehydes

Cyclopentene chiral

Cyclopentene chlorination

Cyclopentene conversion

Cyclopentene cross-metathesis

Cyclopentene derivative

Cyclopentene derivatives 1-methyl

Cyclopentene derivatives 1-substituted

Cyclopentene derivatives fused ring

Cyclopentene diamination

Cyclopentene during

Cyclopentene epoxide

Cyclopentene formation

Cyclopentene formation annulations

Cyclopentene halohydrins

Cyclopentene hydroboration

Cyclopentene living systems

Cyclopentene oxidation

Cyclopentene oxidative cleavage

Cyclopentene oxide

Cyclopentene oxide 2-Cyclopentenone

Cyclopentene oxides rearrangement

Cyclopentene ozone

Cyclopentene polymerisation mechanism

Cyclopentene preparation

Cyclopentene rate constants

Cyclopentene reactions

Cyclopentene rearrangement, photochemical

Cyclopentene ring

Cyclopentene ring 1,3-dienes

Cyclopentene ring vinylcyclopropanes

Cyclopentene ring-opening metathesis polymerization

Cyclopentene scaffolds

Cyclopentene special

Cyclopentene stability

Cyclopentene stereospecific

Cyclopentene synthesis

Cyclopentene systems

Cyclopentene, 1,5-dimethylreduction diimide

Cyclopentene, 1-acetoxyPauson-Khand reaction

Cyclopentene, 1-arylthermal ene reaction

Cyclopentene, 1-arylthermal ene reaction mechanistic studies

Cyclopentene, 1-methylcyclopropanation

Cyclopentene, 1-methylcyclopropanation Pauson-Khand reaction

Cyclopentene, 3- Pauson-Khand reaction

Cyclopentene, 3-chloro

Cyclopentene, 4-hydroxy-4- synthesis

Cyclopentene, Ziegler—Natta polymerization

Cyclopentene, autoxidation

Cyclopentene, carbon atom reactions

Cyclopentene, dichlorosynthesis via dichlorocyclopropyl compounds

Cyclopentene, hydroxylation

Cyclopentene, l-

Cyclopentene, methoxycycloaddition reactions

Cyclopentene, methoxycycloaddition reactions with benzonitrile

Cyclopentene, oxidation oxidative cyclization

Cyclopentene, oxidative cycloaddition

Cyclopentene, photochemistry

Cyclopentene, polymerization

Cyclopentene, vinylsynthesis nickel-catalyzed rearrangement

Cyclopentene-, 3-acetoxy

Cyclopentene-1,2-diones

Cyclopentene-1,2-diones synthesis

Cyclopentene-1,2-diones via metal-catalyzed cycloaddition

Cyclopentene-3,5-diones monoacetal

Cyclopentene-3-carboxylic acid esters

Cyclopentene-3-carboxylic acid synthesis

Cyclopentene-fused indole

Cyclopentene/cyclooctene, ROMP

Cyclopentenes 1-sulfonyl

Cyclopentenes 1-vinyl-1-cyclopentene

Cyclopentenes 2 + 2 + 2] cycloaddition reactions

Cyclopentenes Methylenecyclopentenes

Cyclopentenes VCP- CP) rearrangement

Cyclopentenes alkylidene

Cyclopentenes annulation

Cyclopentenes carbonyl compounds

Cyclopentenes carbonylation

Cyclopentenes chiral

Cyclopentenes cobalt carbonyl catalyst

Cyclopentenes complexes

Cyclopentenes copolymerization

Cyclopentenes diamination

Cyclopentenes dicarboxylation

Cyclopentenes from alkynes

Cyclopentenes from pyrolysis

Cyclopentenes hexamethyldisilazide

Cyclopentenes irradiation

Cyclopentenes ketones

Cyclopentenes opening of cyclopropyl ketones

Cyclopentenes oxidation

Cyclopentenes oxidative cleavage

Cyclopentenes oxide

Cyclopentenes ozone

Cyclopentenes rearrangement

Cyclopentenes rearrangement, lithium halide catalyzed

Cyclopentenes rhodium

Cyclopentenes ring-opening metathesis polymerization

Cyclopentenes selectivity

Cyclopentenes special

Cyclopentenes synthesis

Cyclopentenes use of vinylcyclopropane

Cyclopentenes via annulation

Cyclopentenes via cycloaddition reactions

Cyclopentenes via reaction of allenylsilanes with a,p-unsaturated

Cyclopentenes via vinylcyclopropane rearrangement

Cyclopentenes vinylcyclopentenes

Cyclopentenes vinylcyclopropane

Cyclopentenes vinylcyclopropanes

Cyclopentenes with m-xylene

Cyclopentenes, 1-acyl

Cyclopentenes, 3- Pauson-Khand reaction

Cyclopentenes, addition

Cyclopentenes, addition 4- carbenes

Cyclopentenes, addition cycloaddition with

Cyclopentenes, alkyl

Cyclopentenes, diastereoselectivity

Cyclopentenes, from

Cyclopentenes, from vinylcyclopropanes

Cyclopentenes, ozonolysis

Cyclopentenes, radical cations

Cyclopentenes, rearrangements with

Cyclopentenes, ring expansion

Cyclopropane to Cyclopentene Rearrangement

Cyclopropane vinyl, thermal rearrangement to cyclopentenes

Dimethyl 3-cyclopentene-1,1-dicarboxylate

Dipolar cyclopentene formation

Double Robinson-type cyclopentene

Enantiopure cyclopentenes

Enchainment cyclopentene

Ethene-cyclopentene

Ethyl-2-hydroxy-2-cyclopenten

F Cyclopentene

Fatty acids cyclopentene

Functionalized cyclopentenes, stereoselective synthesis

Halogenation cyclopentene

Highly substituted cyclopentene

Hydroboration cyclopentenes

Infrared spectra cyclopentene

M-Xylene with cyclopentene

Metalla-cyclopentene

Metallation of Cyclopentene and Subsequent Methylthiolation

Methyl 3-cyclopentene-1-carboxylate

Methyl with cyclopentene

Michael chiral cyclopentenes

Modification of the cyclopentene ring

Monocyclic cyclopentene derivatives

Monomers containing a fused cyclopentene ring and more than one double bond

Norbomene cyclopentene

Pentanoic acid, 5-oxosynthesis via oxidative cleavage of cyclopentene

Poly(l-Pentenylene) by Metathesis Polymerization of Cyclopentene with a Ziegler-Natta-Catalyst in Solution

Polymerization activity cyclopentene

Polymerization of Cyclopentene

Preparation of cyclopentene

Rearrangement of Vinylcyclopropane to Cyclopentene

Rearrangements cyclopentene

Ring opening vinylcyclopropane-cyclopentene rearrangement

Ring-opening of cyclopentene oxide

Silyl cyclopentene

Substituted cyclopentene

Substituted cyclopentene product

Synthesis trisubstituted cyclopentene

Trisubstituted cyclopentenes

Vinyl cyclopropane - cyclopentene rearrangement

Vinylcyclopropane - Cyclopentene Conversion

Vinylcyclopropane- cyclopentene rearrangement anion-accelerated

Vinylcyclopropane- cyclopentene rearrangement mechanism, thermal

Vinylcyclopropane- cyclopentene rearrangement metal-catalyzed

Vinylcyclopropane- cyclopentene rearrangement stereoselectivity

Vinylcyclopropane- cyclopentene rearrangement, photochemical

Vinylcyclopropane-Cyclopentene

Vinylcyclopropane-cyclopentene rearrangemen

Vinylcyclopropane-cyclopentene rearrangement

Vinylcyclopropane-cyclopentene rearrangement thermal

Vinylcyclopropane-cyclopentene rearrangement transform

Vinylcyclopropanes rearrangement to cyclopentenes

Vinylcyclopropanes, rearrangement cyclopentenes

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