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Substitution ring

Figure lO.J-49. One hit for the similarity search Ring + Substitution Position"... [Pg.588]

The reactant corresponding to retrosynthetic path b in Scheme 2.2 can be obtained by Meerwein arylation of vinyl acetate with o-nitrophcnyldiazonium ions[9], Retrosynthetic path c involves oxidation of a 2-(o-nitrophenyl)ethanol. This transformation has also been realized for 2-(o-aminophenyl)ethanols. For the latter reaction the best catalyst is Ru(PPhj)2Cl2. The reaction proceeds with evolution of hydrogen and has been shown to be applicable to a variety of ring-substituted 2-(o-aminophenyl)ethanols[10]. [Pg.15]

A-4-Thiazoline-2-ones and ring substituted derivatives are usually prepared by the general ring-closure methods described in Chapter II. Some special methods where the thiazole ring is already formed have been used, however. An original synthesis of 4- 2-carboxyphenyl)-A-4-thiazoline-2-one (18) starting from 2-thiocyanato-2-halophenyl-l-3-indandione (19) has been proposed (Scheme 8) (20, 21). Reaction of bicyclic quaternary salts (20) may provide 3-substituted A-4-thiazoline-2-one derivatives (21) (Scheme 9) (22). Sykes et al. (23) report the formation of A-4-thiazoline-2-ones (24) by treatment ef 2-bromo (22) or 2-dimethylaminothiazole (23) quaternary salts with base (Scheme 10). [Pg.373]

An old name for benzene was phene and its hydroxyl derivative came to be called phe nol This like many other entrenched common names is an acceptable lUPAC name Likewise o m and p cresol are acceptable names for the various ring substituted hydroxyl derivatives of toluene More highly substituted compounds are named as deriv atives of phenol Numbering of the ring begins at the hydroxyl substituted carbon and proceeds m the direction that gives the lower number to the next substituted carbon Sub stituents are cited m alphabetical order... [Pg.993]

Sulfonation. Aniline reacts with sulfuric acid at high temperatures to form -aminoben2enesulfonic acid (sulfanilic acid [121 -57-3]). The initial product, aniline sulfate, rearranges to the ring-substituted sulfonic acid (40). If the para position is blocked, the (9-aminoben2enesulfonic acid derivative is isolated. Aminosulfonic acids of high purity have been prepared by sulfonating a mixture of the aromatic amine and sulfolane with sulfuric acid at 180-190°C (41). [Pg.231]

The hydroxyben2oic acids have both hydroxyl and the carboxyl groups and, therefore, participate in chemical reactions characteristic of each of these moieties. In addition, these acids can undergo electrophilic ring substitution. The following reactions are discussed in terms of saUcyhc acid, but are characteristic of all the hydroxyben2oic acids. [Pg.284]

Hydroxyl Group. Reactions of the phenohc hydroxyl group iaclude the formation of salts, esters, and ethers. The sodium salt of the hydroxyl group is alkylated readily by an alkyl hahde (WiUiamson ether synthesis). Normally, only alkylation of the hydroxyl is observed. However, phenolate ions are ambident nucleophiles and under certain conditions, ring alkylation can also occur. Proper choice of reaction conditions can produce essentially exclusive substitution. Polar solvents favor formation of the ether nonpolar solvents favor ring substitution. [Pg.285]

The aromatic ring has high electron density. As a result of this electron density, toluene behaves as a base, not only in aromatic ring substitution reactions but also in the formation of charge-transfer (tt) complexes and in the formation of complexes with super acids. In this regard, toluene is intermediate in reactivity between benzene and the xylenes, as illustrated in Table 2. [Pg.175]

Benzene Nucleus Reactions. Ring substitutions, such as sulfonation and nitration, can be effected without destmction of the carbonyl group. Under the influence of the carbonyl group, meta substitution usually occurs. [Pg.34]

Benzene undergoes substitution, addition, and cleavage of the ring substitution reactions are the most important for iadustrial appHcations. [Pg.38]

In its chemical behavior benzoic acid shows few exceptional properties the reactions of the carboxyl group are normal, and ring substitutions take place as would be predicted. [Pg.53]

Ring-Substituted Derivatives The ring-chlorinated derivatives of benzyl chloride, benzal chloride, and benzotrichloride are produced by the direct side-chain chlorination of the corresponding chlorinated toluenes or by one of several indirect routes if the required chlorotoluene is not readily available. Physical constants of the main ring-chlorinated derivatives of benzyl chloride, benzal chloride, and benzotrichloride are given in Table 4. [Pg.61]

When activating substituents are present in the benzenoid ring, substitution usually becomes more facile and occurs in accordance with predictions based on simple valence bond theory. When activating substituents are present in the heterocyclic ring the situation varies depending upon reaction conditions thus, nitration of 2(177)-quinoxalinone in acetic acid yields 7-nitro-2(177)-quinoxalinone (21) whereas nitration with mixed acid yields the 6-nitro derivative (22). The difference in products probably reflects a difference in the species being nitrated neutral 2(177)-quinoxalinone in acetic acid and the diprotonated species (23) in mixed acids. [Pg.163]

The photodecomposition of 2,1-benzisoxazolium salts gave iV-substituted phenones (Scheme 22). In one case the l-(adamantyl)-3-phenyl-2,l-benzisoxazolium cation (51) did not generate a substituted phenone with reductive ring substitution. Rather, adamantyl ring rupture occurred to produce (52) (Scheme 22) (78JOC123.3, 77JOC3929). [Pg.20]

Nucleophilic aromatic substitution (Chapter 23) A reaction in which a nucleophile replaces a leaving group as a substituent on an aromatic ring. Substitution may proceed by an addition-elimination mechanism or an elimination-addition mechanism. [Pg.1289]

The applied Gould-Jacobs reaction is very often used to prepare angularly annelated pyridine-ring-substituted imidazoquinolines in inert media under conditions of thermal cyclocondensation, for example at temperatures above 250°C. [Pg.241]

The relative stability of lithiated thiopyrans seems to depend upon the heterocyclic ring substitution. Thus, a-lithiated 2,6-diphenyl-2//-thiopyran 16 rearranges into the y-lithiated derivative 17 (Scheme 5) (82JOC680), while the reverse transformation occurs on lithiation of 2,6-diphenyl-4-diethylphosphonylthiopyran (80JOC2453). [Pg.257]

In this work the possibility of the existence of 1,2-dihydro isomer with the core structure 42 was not considered. Recently, however, it was shown that 1,2-dihydropyridazines could be prepared by careful electroreduction of the corresponding pyridazines, and that their stability depends significantly on the ring substitutions. Thus, dimethyl l,2-dihydropyridazine-3,6-dicarboxylate 43a (R = H) is reasonably stable and rearranges into the 1,4-dihydro tautomer 43b only at a more negative potential, while the tautomerization in its tetrasubstituted analog 43a (R = COOMe) occurs more readily (Scheme 14) [00TL647]. [Pg.263]


See other pages where Substitution ring is mentioned: [Pg.70]    [Pg.24]    [Pg.1140]    [Pg.129]    [Pg.443]    [Pg.946]    [Pg.710]    [Pg.83]    [Pg.269]    [Pg.369]    [Pg.243]    [Pg.415]    [Pg.285]    [Pg.286]    [Pg.158]    [Pg.158]    [Pg.177]    [Pg.60]    [Pg.348]    [Pg.130]    [Pg.161]    [Pg.251]    [Pg.51]    [Pg.732]    [Pg.443]    [Pg.946]    [Pg.89]    [Pg.244]    [Pg.286]    [Pg.49]   
See also in sourсe #XX -- [ Pg.168 ]

See also in sourсe #XX -- [ Pg.309 ]

See also in sourсe #XX -- [ Pg.56 ]




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2-Oxazolidinone ring substitution

2-phenyl-4-substituted derivatives, ring

2-phenyl-4-substituted derivatives, ring opening

7-Substituted fused ring tetracycline

7-Substituted fused ring tetracycline compounds

A Ring and Its Substitutions

A ring substitutions

Amines ring substitution

Amino groups ring-substituted anilines

Anilines ring-substituted

Arenes ring substitution

Aromatic Compounds—Substituted Benzene Rings

Aromatic ring substitution

Aromatic rings substitution patterns, infrared

Aromatic rings, oxidation ipso substitution

Aromatic substitution ring closure with

Aromatic, acidity ring substitution

Associative Substitution by Pentadienyl Ligand Ring Slip

Attack on Substituted Aromatic Rings

Axially and equatorially substituted rings react differently

Azide ions ring-substituted cumyl derivatives

Azine substitution —cont ring-nitrogens, influence

B Ring and Its Substitutions

B ring substitutions

Basic properties ring substitution

Benzene ring, substitution

Benzene ring, substitution patterns

Benzene rings substituted

Benzenoid ring substitution

Benzoins, ring-substituted

Bridged rings vinyl substitutions

By ring closure of ortho-substituted

By ring closure of ortho-substituted t-anilines

By ring-closure of o-substituted t-anilines

C Ring and Its Substitutions

C ring substitutions

Conformations, ligand ring substitution

Cyclopentadienyl rings, methyl substitution

Cyclopentadienyls, ring substituted

Cyclopentane rings, highly substituted

DRUGS BASED ON A SUBSTITUTED BENZENE RING

Degree of aromatic ring substitution

Degree of ring substitution

Diene Substitution on the Geometry of Ring Fusion

Effect of Ring Substitution

Effect of ring size and substitution on thermodynamic polymerizability

Eight-Membered Ring Preserved Substitution at Nitrogen, Sulfur, and Carbon

Electron pair donation ring-substituted anilines

Electrophilic Substitution of Compounds Containing Several Thiophene Rings

Electrophilic substitutions of five-membered rings

Five-membered rings, electrophilic substitutions

Five-membered rings, electrophilic substitutions fragmentations

Fluorine substitution effect epoxide ring opening reaction

Four-membered rings 2-substituted oxetane-3-ones

Fully substituted oxazole ring

Fused benzene rings substituted

Fused rings, electrophilic aromatic substitution

Fused-ring compounds aromatic substitution

Halogeno-substituted ring systems

Halogeno-substituted ring systems alkylation

Halogeno-substituted ring systems arylation

Heteroaromatic ring substitution

Heterocycles by ring closure of ortho-substituted

Heterocycles by ring closure of ortho-substituted /-anilines

Heterocycles by ring closure of ortho-substituted t-anilines

Heterocyclic rings, substitution

Highly substituted cyclohexane ring

INDEX ring substitution pattern

In the substituted ring

Intramolecular nucleophilic substitution ring closure

Intramolecular nucleophilic substitution small rings

Marino, G., Electrophilic Substitutions Five-Membered Rings

Meth-Cohn, O., Suschitzky, H., Heterocycles by Ring-Closure of Ortho-Substituted

Modifications at C-5 and Substitution for the Ring Oxygen

Nucleophilic Substitution and Ring Fission

Nucleophilic reactions addition, cleavage, substitution, - ring opening

Nucleophilic substitution allylic ring structures

Nucleophilic substitution five-membered ring compounds

Nucleophilic substitution on fluoroaromatic rings

Nucleophilic substitution on six-membered rings

Nucleophilic substitution ring-substituted derivatives

Nucleophilic substitution three-member ring compounds

Nucleophilic substitution-ring

Nucleophilic substitution-ring opening

Nucleophilic substitution—continued ring nitrogens, influence

Nucleophilic substitution—continued ring-opening and recyclization

Phenols ring substitution

Phenyl ring substituted aniline

Phosphorus-Substituted Sugar Rings

Pyridine ring electrophilic substitutions

Pyrimidine Ring Substitution

Pyrimidine ring fully substituted

Pyrimidine-2-amines, ring atom substitution

Pyron-ring substituted coumarins

Replacement (s. a. Substitution aldehyde groups in ar. rings

Rigidity, aromatic ring substitution

Ring Fission of Substituted Catechols

Ring Substitution and C-acylations

Ring closure of ortho-substituted (-anilines

Ring closure of ortho-substituted /anilines, for heterocycles

Ring closure of ortho-substituted r-anilines

Ring closure of ortho-substituted t-anilines

Ring closure of ortho-substituted t-anilines, for

Ring closure of ortho-substituted t-anilines, for heterocycles

Ring closure of ortho-substituted tanilines, for heterocycles

Ring closure substitution

Ring compounds bridged substitution

Ring compounds fused substitution

Ring compounds spiro substitution

Ring expansion substitution

Ring inversion substituted cyclohexanes

Ring structures nucleophilic substitution

Ring substituted lactones

Ring substitution 376 Vinylic alcohol

Ring substitution in aromatic amines

Ring substitution pattern, protonation

Ring substitution, angular

Ring substitution, catalytic activity

Ring systems halogeno- or triflyloxy-substituted

Ring-Substituted Aromatics

Ring-chain tautomerism substitution, nucleophilic

Ring-opening metathesis polymerization substituted norbornenes

Ring-opening polymerization substituted

Ring-opening polymerization ©Substituted lactones

Ring-opening substituted oxirane

Ring-oxygen substitution

Ring-substituted PTV derivatives

Ring-substituted amphetamines

Ring-substituted anilines Subject

Ring-substituted anilines monosubstituted

Ring-substituted azetidinones structures

Ring-substituted derivatives

Ring-substituted derivatives, nucleophilic

Rings 3-membered, substitution

Single-rings, substituted

Solvatochromic probes ring-substituted

Styrenes, ring-substituted

Substituent Effects in Substituted Aromatic Rings

Substituted cyclopropenes, ring opening

Substituted epoxides ring opening

Substituted furan rings, synthesis

Substituted pyrimidines, pyrimidine ring

Substituted ring systems, synthesis

Substitution Reactions of Polymers with Aromatic Rings

Substitution Reactions of the Furan Ring

Substitution Reactions on the Thiazole Ring

Substitution at Aromatic Rings

Substitution at the Porphyrin Ring

Substitution aziridine ring opening

Substitution in the Ring

Substitution in the phenyl ring

Substitution of Benzene Rings

Substitution on the Indoline Ring Moiety

Substitution on the Naphthoxazine Ring Moiety

Substitution pattern of benzene ring

Substitution relevant ring system

Substitution ring side-chain

Substitution, electrophilic fused ring aromatics

Substitution, electrophilic other ring systems

Substitution, nucleophilic porphyrin ring

Substitutions on the Ring

Sulfonic acid ring substituted

Synthesis of Substituted THF Rings

Synthesis of Substituted THP Rings

Terephthalate ring substitutions

Theoretical studies small ring substitution

Thiazole Ring Substitution

Triflyloxy-substituted ring systems

Vinyl-substituted monomers radical ring-opening

With oxygen-substituted ring systems

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