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Five-membered-ring

A fundamental set is also called a smallest set. Usually such a smallest set is selected that it also contains the smallest rings the smallest set of smallest rings (SSSR). This makes chemical sense in indane (Figure 2-38a), for example, where only the six- and the five-membered rings are of chemical significance whereas the enveloping nine-membered ring is not. [Pg.56]

It can thus be seen that most of the variation in the data (85.9%) is explained by the fir principal component, with all but a fraction being explained by the first two componeni These two principal components can be plotted as a scatter graph, as shown in Figu 9.33, suggesting that there does indeed seem to be some clustering of the conformatioi of the five-membered ring in this particular data set. [Pg.515]

Concentrate on the saturated five-membered ring part first. [Pg.80]

Analysis We are clearly going to put carbonyl groups on each side of the five membered ring and disconnect the bond e.g. [Pg.80]

When they treated TM 381 with base (MeO in MeOH) it was in fact 381A which was formed, so five membered rings are better than seven membered rings (J. Org. Chem.. 1976, 41, 2955). [Pg.122]

The N-basicity of the commonly used amines (pyrrolidine > piperidine > morpholine) drops by 2-3 orders of magnitude as a consequence of electron pair delocalization in the corresponding enamines. This effect is most pronounced in morpholino enamines (see table below). Furthermore there is a tendency of the five-membered ring to form an energetically favorable exocyclic double bond. This causes a much higher reactivity of pyrroUdino enamines as compared to the piperidino analogues towards electrophiles (G.A. Cook, 1969). [Pg.13]

Palladium catalyzed cycloisomerizations of 6-cn-l-ynes lead most readily to five-membered rings. Palladium binds exclusively to terminal C = C triple bonds in the presence of internal ones and induces cyclizations with high chemoselectivity. Synthetically useful bis-exocyclic 1,3-dienes have been obtained in high yields, which can, for example, be applied in Diels-Alder reactions (B.M. Trost, 1989). [Pg.84]

The two-bond disconnection (re/ro-cycloaddition) approach also often works very well if the target molecule contains three-, four-, or five-membered rings (see section 1.13 and 2.5). The following tricyclic aziridine can be transformed by one step into a monocyclic amine (W. Nagata, 1968). In synthesis one would have to convert the amine into a nitrene, which-would add spontcaneously to a C—C double bond in the vicinity. [Pg.212]

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]

The ligand effect seems to depend on the substrates. Treatment of the prostaglandin precursor 73 with Pd(Ph3P)4 produces only the 0-allylated product 74. The use of dppe effects a [1,3] rearrangement to produce the cyclopen ta-none 75(55]. Usually a five-membered ring, rather than seven-membered, is predominantly formed. The exceptionally exclusive formation of seven-membered ring compound 77 from 76 is explained by the inductive effect of an oxygen adjacent to the allyl system in the intermediate complex[56]. [Pg.302]

The TT-allylpalladium complexes 241 formed from the ally carbonates 240 bearing an anion-stabilizing EWG are converted into the Pd complexes of TMM (trimethylenemethane) as reactive, dipolar intermediates 242 by intramolecular deprotonation with the alkoxide anion, and undergo [3 + 2] cycloaddition to give five-membered ring compounds 244 by Michael addition to an electron-deficient double bond and subsequent intramolecular allylation of the generated carbanion 243. This cycloaddition proceeds under neutral conditions, yielding the functionalized methylenecyclopentanes 244[148], The syn-... [Pg.322]

Allyl aryl ethers are used for allylation under basic conditionsfh], but they can be cleaved under neutral conditions. Formation of the five-membered ring compound 284 based on the cyclization of 283 has been applied to the syntheses of methyl jasmonate (285)[15], and sarkomycin[169]. The trisannulation reagent 286 for steroid synthesis undergoes Pd-catalyzed cyclization and aldol condensation to afford CD rings 287 of steroids with a functionalized 18-methyl group 170]. The 3-vinylcyclopentanonecarboxylate 289, formed from 288, is useful for the synthesis of 18-hydroxyestrone (290)[I7I]. [Pg.328]

Unstrained difluorotetramethyldisilane (84) gives the 1 1 adduct 85 as the main product and the 1 2 adduct 86 as a minor product[78,79]. On the other hand, the dimerization and double silylation of conjugated dienes with (Me3Si)2 catalyzed by PdCl2(PhCN)2 take place at 90" C[80]. Pd(dba)2 without phosphine is an active catalyst for the reaction, which proceeds in DMF to give 87 at room temperature[81], A five-membered ring is formed by the application of the reaction to the di-(2,4-pentadienyl)malonate (69)[82]. [Pg.436]

Keto esters are obtained by the carbonylation of alkadienes via insertion of the aikene into an acylpalladium intermediate. The five-membered ring keto ester 22 is formed from l,5-hexadiene[24]. Carbonylation of 1,5-COD in alcohols affords the mono- and diesters 23 and 24[25], On the other hand, bicy-clo[3.3.1]-2-nonen-9-one (25) is formed in 40% yield in THF[26], 1,5-Diphenyl-3-oxopentane (26) and 1,5-diphenylpent-l-en-3-one (27) are obtained by the carbonylation of styrene. A cationic Pd-diphosphine complex is used as the catalyst[27]. [Pg.515]


See other pages where Five-membered-ring is mentioned: [Pg.855]    [Pg.950]    [Pg.266]    [Pg.187]    [Pg.188]    [Pg.515]    [Pg.138]    [Pg.139]    [Pg.140]    [Pg.141]    [Pg.142]    [Pg.143]    [Pg.144]    [Pg.145]    [Pg.146]    [Pg.147]    [Pg.148]    [Pg.149]    [Pg.130]    [Pg.36]    [Pg.255]    [Pg.25]    [Pg.209]    [Pg.266]    [Pg.315]    [Pg.335]    [Pg.301]    [Pg.311]    [Pg.345]    [Pg.396]    [Pg.434]    [Pg.437]    [Pg.459]    [Pg.476]    [Pg.480]    [Pg.480]    [Pg.483]   
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Acetaldehyde, 2-aryl-2,2-dimethoxyaldol reaction five-membered rings from

Alkenes derivatives, five-membered ring structure

Anions, ring-opening of five-membered

Anions, ring-opening of five-membered heteroaromatic

Annulation for five-membered rings

Applications for Organometallic Intramolecular-Coordination Five-Membered Ring Compounds Reported in Recent Articles

Applications for Organometallic Intramolecular-Coordination Five-Membered Ring Intermediates

Applications of Cyclometalation Reactions and Five-Membered Ring Products for Synthetic Purposes

Applications of Five-Membered Ring Products in Cyclometalation Reactions for Other Purposes

Aromatic Five-Membered Ring Heterocyclics

Azadienes five-membered ring heteroaromatic

Azoles Five-membered ring heterocycles with

Carbocyclic synthesis five-membered-ring

Carbon clusters five-membered rings

Characteristics of Cyclometalation Reactions for Organometallic Intramolecular-Coordination Five-Membered Ring Compounds

Chelate ring five-membered

Chemistry five- and six-membered rings

Compounds containing Fused Five- and Six-Membered Rings

Compounds containing Two Fused Five-Membered Rings

Compounds with Heteroatom Five-membered Ring Ligands

Condensed 1,2,4-triazines: I. Fused five-membered rings

Conformation and Pseudorotation of Five-Membered Rings

Conformation of five-membered rings

Conformations of the Five-Membered Rings

Cyclic sulphones five-membered ring

Cycloaddition five-membered rings formation

Cycloaddition/annulation five-membered rings

Electrophilic substitutions of five-membered rings

Electrophilic, of five-membered rings

Exocyclic five-membered ring radicals

FIVE-MEMBERED HETEROCYCLES FUSED TO A BENZENE RING

Five- and Seven-membered Ring Systems

Five- and Six-Membered Ring Alkaloids

Five- and Six-Membered Unsaturated Rings

Five- and Six-membered-ring Compounds

Five- and six-membered rings with two

Five-Membered Heterocycles Fused to One Benzene Ring

Five-Membered Heterocyclic Rings and Their Fused Derivatives

Five-Membered Ring Benzofused Heterocycles

Five-Membered Ring Construction via Decomposition of Azides

Five-Membered Ring Heterocycles with Two Hetero Atoms

Five-Membered Ring Imidoyl Halides

Five-Membered Ring Systems with Two or More Heteroatoms

Five-Membered Rings One Heteroatom

Five-Membered Rings with More Than Two Heteroatoms

Five-Membered Rings with Two Heteroatoms

Five-Membered Rings, Conformations of (Fuchs)

Five-and Six-Membered Ring Forms

Five-and six-membered rings

Five-membered Nitrogen- and Oxygen-containing Rings

Five-membered Nitrogen-containing Rings

Five-membered Oxygen-containing Rings

Five-membered Ring Expansion

Five-membered Rings containing more than One Nitrogen

Five-membered heteroaromatic anions ring-opening

Five-membered heterocycles, ring

Five-membered heterocycles, ring transformations

Five-membered heterocyclic rings

Five-membered lactone ring

Five-membered ring 330 INDEX

Five-membered ring alkaloids

Five-membered ring compounds, synthesis

Five-membered ring fluoro-heterocycles

Five-membered ring formation Subject

Five-membered ring formation solvent effect

Five-membered ring hemiketal

Five-membered ring heterocycles formation

Five-membered ring heterocycles imidazole

Five-membered ring heterocycles lactams

Five-membered ring heterocycles organic reactions

Five-membered ring heterocycles pyrazole

Five-membered ring heterocycles pyrrole

Five-membered ring heterocycles tetrazole

Five-membered ring heterocycles triazole

Five-membered ring heterocycles, relative

Five-membered ring heterocycles, relative aromaticity

Five-membered ring heterocyclics with two or more hetero-atoms

Five-membered ring phosphorus

Five-membered ring structures, -coordination

Five-membered ring systems 1.2- dioxolanes

Five-membered ring systems benzo furans

Five-membered ring systems carbazoles

Five-membered ring systems derivatives

Five-membered ring systems furans

Five-membered ring systems heteroatoms

Five-membered ring systems indoles synthesis

Five-membered ring systems isoindoles

Five-membered ring systems isoxazoles

Five-membered ring systems isoxazolidines

Five-membered ring systems oxadiazoles

Five-membered ring systems oxazoles

Five-membered ring systems oxazolidines

Five-membered ring systems pyrroles synthesis

Five-membered ring systems reactions

Five-membered ring systems synthesis

Five-membered ring systems thiazoles

Five-membered ring systems with N and S atom

Five-membered ring systems with O and N atoms

Five-membered ring systems with more than one N atom

Five-membered ring, formation

Five-membered ring, synthesis

Five-membered rings 1,5-dipolar electrocyclization

Five-membered rings 2- acrylonitrile

Five-membered rings Cyclopentanes

Five-membered rings Cyclopentanones

Five-membered rings Friedel-Crafts reaction

Five-membered rings Grignard reagents

Five-membered rings Nickel carbonyl

Five-membered rings Palladium acetate

Five-membered rings Palladium chloride

Five-membered rings Rhodium carboxylates

Five-membered rings Titanium chloride

Five-membered rings Tributyltin hydride

Five-membered rings aldol reaction cascade

Five-membered rings heteroatoms

Five-membered rings metal complexes

Five-membered rings nitrile imine cycloadditions

Five-membered rings nitrile oxide intramolecular cycloadditions

Five-membered rings nucleosides

Five-membered rings oligosaccharides

Five-membered rings polyene cyclization

Five-membered rings substituents

Five-membered rings thiophene derivatives

Five-membered rings three-atom tethers

Five-membered rings with two or more nitrogen atoms

Five-membered rings, characteristics

Five-membered rings, conformation

Five-membered rings, electrophilic

Five-membered rings, electrophilic fragmentations

Five-membered rings, electrophilic substitutions

Five-membered rings, electrophilic substitutions fragmentations

Five-membered rings, heterocycle synthesis

Five-membered rings, literature survey

Five-membered rings, ring-closing metathesis strategy

Five-membered-ring Carbocyclic Compounds

Five-membered-ring carbocyclics

Five-membered-ring fused pyrimidines

Fluoro heterocycles with five-membered rings

Formation by Five-Membered Ring Systems

Formation of Five-Membered Rings

Formation of Five-Membered Rings Intramolecular

Formation of five-membered rings - 1,3-dipolar cycloaddition reactions

Four- and Five-membered Ring Compounds

From five-membered rings

Furanose rings five-member

Fused Five- and Six-Membered Rings

Fused Five-membered Rings

Fused-Ring Five-Membered Heterocycles Indoles and Purines

Fused-ring five-membered heterocycles

Gilchrist, T. L., Ring-Opening of Five-Membered

Gilchrist, T. L., Ring-Opening of Five-Membered Heteroaromatic Anions

Halogenation five-membered rings

Heteroarenes five-membered ring

Heteroaromatic compounds five-membered aromatic ring structures

Heteroaromatics five-membered ring systems

Heteroarotinoids five-membered ring

Heterocyclic compounds five-membered rings

Heterocyclic rings unsaturated five-membered

Heterocyclic synthesis five-membered rings

Imine compounds five-membered rings

Involving other than five and six-membered rings

Ketones five-membered ring synthesis

Lactones five-membered ring

Marino, G., Electrophilic Substitutions Five-Membered Rings

Metathesis five-membered rings

More Than One Heteroatom in the Five-Membered Ring

Natural product synthesis five-membered ring compounds

Neonicotinoids five-membered ring systems

Nitrile imines five-membered rings

Nitrogen-containing heterocycle synthesis five-membered ring heterocycles

Nucleophilic substitution five-membered ring compounds

Of heterocycles five-membered rings

Of heterocycles: five-membered rings with

Of heterocycles: five-membered rings with one heteroatom

Of heterocycles: five-membered rings with two or more heteroatoms

Of pyrazoles condensed to heteroaromatic five- and six-membered rings

Olefins derivatives, five-membered ring structure

Open-chain derivatives,— FIVE MEMBERED RINGS

Other Five-Membered Ring Formations

PAHs with Five-membered Rings

Palladium-catalyzed synthesis five-member ring

Phosphorus heterocycles five-membered rings

Poly five-membered rings

Pseudorotation five-membered ring

Pyrazoles condensed to heteroaromatic five- and six-membered rings

Pyridine five-membered rings

Reactions with Five-Membered Heterocyclic Rings

Reactions with Five-Membered Ring Systems Containing One Heteroatom

Reactivity of Five-membered Rings with One Heteroatom

Reactivity of Five-membered Rings with Two or More Heteroatoms

Rearrangements in Five-Membered Heteroaromatic Rings

Reasons Why Organometallic Intramolecular-Coordination Five-Membered Ring Compounds Are Extremely Easily Synthesized Through Cyclometalation Reactions

Ring Expansion into Five-Membered Heterocycles

Ring closures five-membered

Ring compound five-membered

Ring compounds heterocyclic five-membered rings

Ring compounds heterocyclic five-membered rings from

Ring compounds, structure five-membered

Ring five-membered, carbocyclic

Ring structure five-membered rings

Ring synthesis five-membered rings

Ring system five-membered

Ring transformations of five-membered heterocycles

Ring-chain tautomerism involving five-membered rings

Ring-opening of five-membered

Ring-opening of five-membered heteroaromatic

Saturated Five-Membered Ring Azaheterocyclic Spiropyrans

Saturated five-membered ring

Selenophens Fused to Five-membered Rings

Seven-membered rings five-atom tether

Sialidase Inhibitors Based on Five-Membered Ring Scaffolds

Sialidase Inhibitors Based on a Five-Membered Ring Scaffold

Sialidase inhibitors five-membered ring scaffold based

Strategy XVI Pericyclic Reactions in Synthesis Special Methods for Five-Membered Rings

Strategy XVI Pericyclic Rearrangements in Synthesis Special Methods for Five-Membered Rings

Structure comprising Two Five-Membered Rings

Structure of Five-membered Rings with One Heteroatom

Structure of Five-membered Rings with Two or More Heteroatoms

Subject five-membered rings

Sugar ring, five-membered

Sulfonated polyimides five-member ring

Sulfur compounds heteroatoms, five-membered rings

Synthesis of Five-Membered Ring Heterocycles

Synthesis of Five-Membered Rings with Two Heteroatoms

Synthesis of Pyrazoles Condensed to Five-Membered Rings

Tandem reactions five-membered rings

Tautomerism in Other Five-Membered Ring Lactams

Tautomerism of Heterocycles: Five-Membered Rings with

Tautomerism of heterocycles: five-membered rings with one

Tautomerism of heterocycles: five-membered rings with two

The synthesis of five membered rings

Thiophen Fused to Five-Membered Heteroaromatic Rings

Thiophen Fused to Various Five-Membered Rings

Thiophene derivatives five-membered ring structure

Three-, Four-, and Five-membered-ring Phosphoranes

To form Five-Membered Rings

Transformation of a Five-membered Ring

Transformation of five-membered rings

Triterpenoids, five-membered ring

Two Five-Membered Rings

Two Fused Five-Membered Rings

Ylide compounds five-membered rings

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