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Pyridine with

The above procedure may also be carried out in the presence of 1 ml. of dry pyridine with some alcohols improved yields may be obtained by this modification. [Pg.263]

Mix 1 0 g. of the phenol with 2 5 ml. of pyridine, add 2 g. of p-toluene-sulphonyl chloride, and heat on a water bath for 15 minutes. Pour into 25 ml. of cold water and stir until the oil solidifies. Filter, wash with cold dilute hydrochloric acid (to remove pyridine), with cold dilute sodium hydroxide solution (to remove any phenol present), and then with cold water. Recrystallise from methyl or ethyl alcohol. [Pg.684]

Polymers with a backbone of five-membered heterocyclic rings have been developed in the new area of thermally stable materials during the last 10 years (B-80MI40408). The simple polypyrazole (741) is prepared by condensation of polydiethynylbenzene with hydrazine in pyridine with yields of 60-97%. [Pg.300]

Pyridine with acetone, ammonia, benzene, chloroform, dioxane, petroleum ether, toluene or water. [Pg.37]

Acetoacetamide [5977-14-0] M 101.1, m 54-55, 54-56. Recrystallise from CHCI3, or Me2CO/pet ether. Crystallises from pyridine with 4mol of solvent. Slightly soluble in H2O, EtOH and AcOH but... [Pg.83]

Berg et al. defined a different ortho steric constant. The model reaction is the quatemization of substituted pyridines with methyl iodide in acetonitrile solution. [Pg.337]

The 1,2-dihydro derivative is formed by reduction of pyridine with LiAlH4 (85). Analogous reduction with sodium in 95 % alcohol affords the 1,4-dihydro derivative. Monomeric N-trimethylsilyl-l,2,3,4-tetrahydro (28)... [Pg.259]

In 1904, Zincke reported that treatment of Al-(2,4-dinitrophenyl)pyridinium chloride (1) with aniline provided a deep red salt that subsequently transformed into A-phenyl pyridinium chloride 5 (Scheme 8.4.2). Because the starting salt 1 was readily available from the nucleophilic aromatic substitution reaction of pyridine with 2,4-dinitrochlorobenzene, the Zincke reaction provided access to a pyridinium salt (5) that would otherwise require the unlikely substitution reaction between pyridine and... [Pg.355]

In 1949, by comparison of the ultraviolet spectra of 2- and 4-amino-pyridine with those of the alkylated forms of the alternative tautomers, Anderson and Seeger showed that the parent compounds existed predominantly in the amino form and reported that the tautomeric composition did not vary greatly with the temperature. By using the pK method, in 1952 Angyal and AngyaP showed that... [Pg.406]

The importance of the solvent, in many cases an excess of the quatemizing reagent, in the formation of heterocyclic salts was recognized early. The function of dielectric constants and other more detailed influences on quatemization are dealt with in Section VI, but a consideration of the subject from a preparative standpoint is presented here. Methanol and ethanol are used frequently as solvents, and acetone,chloroform, acetonitrile, nitrobenzene, and dimethyl-formamide have been used successfully. The last two solvents were among those considered by Coleman and Fuoss in their search for a suitable solvent for kinetic experiments both solvents gave rise to side reactions when used for the reaction of pyridine with i-butyl bromide. Their observation with nitrobenzene is unexpected, and no other workers have reported difficulties. However, tetramethylene sulfone, 2,4-dimethylsulfolane, ethylene and propylene carbonates, and salicylaldehyde were satisfactory, giving relatively rapid reactions and clean products. Ethylene dichloride, used quite frequently for Friedel-Crafts reactions, would be expected to be a useful solvent but has only recently been used for quatemization reactions. ... [Pg.10]

The most thoroughly investigated compounds are the alkyl-pyridines. Coleman and Fuoss compared the reactions of pyridine, 4-picoline, and 4-isopropylpyridine with n-butyl bromide and found a steady increase in the rate in the order given the activation energies are 16.0,15.95, and 15.6 kcal per mole, respectively. Brown and Cahn carried out a detailed study of the reactions of 2-, 3-, and 4-alkyl-pyridines with methyl, ethyl, and isopropyl iodides in nitrobenzene the results are given in Table II. These data show the higher activation... [Pg.11]

Swain and Eddy have queried the wide applicability of the S l and Sif2 mechanisms and favored a push-pull termolecular process for the reaction of pyridine with methyl bromide in benzene solution for example, they have suggested that the effects observed on the addition of methanol, phenol, p-nitrophenol, and mercuric bromide to the reaction mixture can be explained by an intermediate of type 168. ... [Pg.54]

Few other reactions of series of substituted pyridines have been investigated extensively. Dondoni, Modena, and Todesco have measured the rate of N-oxidation of a limited series of pyridines and found a good correlation with normal u-values with a p-value of — 2.23. The A-alkylation of pyridines with alkyl iodides in nitrobenzene has been studied by Brown and Cahn and by Clarke and Rothwell. Unfortunately, the only data available are for the parent compound and for alkyl derivatives, and, since the a-values for the various alkyl groups in a given position are substantially constant, this leaves a correlation of only three independent points. However, the rates of A-alkylation of the j8- and y-alkyl derivatives are so nearly equal that it appears as if no correlation existed. Clarke and Rothwell have also studied the alkylation with allyl bromide in nitromethane at various temperatures, and in this case a more extensive series is available. The authors state that no overall Hammett correlation is obtained however, the j8-substituted derivatives fall on one straight line and the y-derivatives on another one with a different slope. The data are shown in Fig. 2. The line for the j8-compounds, p = — 2.53 0.31, r = 0.95, is seen not to be very good the line for the y-derivatives, p = — 1.42 0.06, r = 0.99, is much more satisfactory. It does not seem likely that the discrepancy is due to the intervention of resonance effects, since in this case one would expect the correlation for the y-derivatives to be poorer than that for the j8-analogs. More extensive studies with a wider variety of substituents would seem very desirable. [Pg.227]

Fig. 2. A Hammett plot of the rates of alkylation of substituted pyridines with allyl bromide in nitromethane. Circles represent 4-substituted compounds and crosses 3-substituted compounds. Cf. ref. 54. Fig. 2. A Hammett plot of the rates of alkylation of substituted pyridines with allyl bromide in nitromethane. Circles represent 4-substituted compounds and crosses 3-substituted compounds. Cf. ref. 54.
Finally, two sets of physical properties have been correlated by the Hammett equation. Sharpe and Walker have shown that changes in dipole moment are approximately linearly correlated with ct-values, and Snyder has recently correlated the free energies of adsorption of a series of substituted pyridines with u-values. All the reaction constants for the series discussed are summarized in Table V. [Pg.232]

These constants, K toK/, may be estimated by use of the Hammett equation. Estimation of 1 and K 4 involves application of the methods outlined in Section II, A, i.e., application of substituent constants for and N+H to the Hammett equation for the acid-base equilibria of benzoic acids. Estimation of A2 and involves application of the method used in Section III,A, i.e., the p-value for the basicity of substituted pyridines, with cr-values for COOH and COO . Provided the necessary a- and p-values are known, this procedure permits the calculation of four independent, or virtually independent, estimates of Krp. A check on the method is available from the relationships shown in Eq. (16) which is readily obtained by multiplication of Eq. (12) and (14) and of Eq. (13) and (15). [Pg.258]

Den Hertog and his co-workers have found that amination of 2-chloro-, 2-bromo-, and 2-iodo-pyridine with H2N yields only... [Pg.153]

The importance of metal catalysis is suggested by the fact that exclusive 4-substitution of pyridine with alkyllithiums or alkyl-magnesium halides occurs when free metal is present exclusive 2-substitution otherwise occurs. [Pg.186]

Relative reactivity wiU vary with the temperature chosen for comparison unless the temperature coefficients are identical. For example, the rate ratio of ethoxy-dechlorination of 4-chloro- vs. 2-chloro-pyridine is 2.9 at the experimental temperature (120°) but is 40 at the reference temperature (20°) used for comparing the calculated values. The ratio of the rate of reaction of 2-chloro-pyridine with ethoxide ion to that of its reaction with 2-chloronitro-benzene is 35 at 90° and 90 at 20°. The activation energy determines the temperature coefficient which is the slope of the line relating the reaction rate and teniperature. Comparisons of reactivity will of course vary with temperature if the activation energies are different and the lines are not parallel. The increase in the reaction rate with temperature will be greater the higher the activation energy. [Pg.265]


See other pages where Pyridine with is mentioned: [Pg.143]    [Pg.355]    [Pg.12]    [Pg.838]    [Pg.126]    [Pg.334]    [Pg.345]    [Pg.47]    [Pg.55]    [Pg.347]    [Pg.663]    [Pg.230]    [Pg.270]    [Pg.260]    [Pg.655]    [Pg.356]    [Pg.87]    [Pg.143]    [Pg.152]    [Pg.174]    [Pg.12]    [Pg.54]    [Pg.156]    [Pg.219]    [Pg.257]    [Pg.261]    [Pg.349]   
See also in sourсe #XX -- [ Pg.53 , Pg.373 ]




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1- Methyl pyridine reaction with radicals

2 pyridine, reaction with bromine

2,2 -Bipyridines, formation from pyridine with base

2,2 -Pyridine disulfide, reaction with

2- Methylimidazo pyridine, reaction with

2- pyridine hydrochloride, reaction with

2- pyridine reaction with platinum complexes

2- pyridine with ruthenium complexes

2- pyridine, reaction with aminotriazoles

2- pyridine, reaction with osmium carbonyls

2- pyridine, reaction with ruthenium complexes

2- pyridines reaction with electron-rich alkenes

2-Chloro-3- pyridine, reaction with

2-Phenyl-6- pyridine, reaction with platinum

2.6- Bis pyridine dihexafluorophosphate, reaction with

2.6- Bis pyridine, reaction with rhenium

2.6- Naphthyridines from pyridines with synthon

3- Aminoimidazo pyridine, reaction with

3- Mercapto- pyridine reaction with methyl acrylate

3- Methyl pyridine, X-ray reaction with LDA

3-Cyano-4-trifluoromethyl-6-phenyl2- pyridine heating with phosphorous oxychloride

4- pyridine, reaction with iron carbonyls

4- pyridine, reaction with iron complexes

6-Phenyl-2- pyridine, reaction with

Acetaldehyde, reaction with ammonia form pyridine

Acetic acid reaction with pyridine

Acyl chlorides reaction with pyridine

Alcohols, primary with chromium trioxide-pyridine

Alkanones with pyridines

Alkenes, with acids fluoride-pyridine

Alkyl lithiums, reaction with pyridines

Aluminum Iodide with Pyridine and Related Bases

Amides reaction with pyridine-sulfur trioxide

Amines reaction with pyridine-sulfur trioxide

Amines reactions with substituted pyridines

Amylopectin pyridine with

Amylose pyridine with

Benzyl chloride, reaction with pyridine

Benzyne with pyridine

Boron complexes, cationic with pyridine

Boron complexes, cations, with pyridine

Bromine complex compounds cations, with pyridine

Calix arenes reaction with 2 pyridine

Carbene complexes with pyridine

Carbenes, reactions with pyridine

Carbohydrates, acidic derivatives with pyridine

Carboxylic acids reaction with pyridine

Chromic oxide complexes with pyridine

Chromium carbonyls, reaction with pyridines

Chromium complex compounds with pyridine

Chromium oxide, addition compounds with pyridine and 3and 4-picoline

Chromium oxide-pyridine, oxidation with

Cobalt carbonyls, reaction with pyridines

Cobalt complex compounds with pyridine

Cobalt complex compounds, anions with pyridine

Complexation with pyridine

Complexes with Amine, Pyridine, and Stilbazole Ligands

Condensations amines with carboxylic acids, pyridine

Cyclocotrimerization of Alkynes with Nitriles to Form Pyridines

Desilylation with HF-pyridine

Engineering with Molecules Containing Amide and Pyridine Functionalities

From a Pyridine Substrate with One Synthon

From a Pyridine Substrate with Two or More Synthons

Grignard reagents with pyridine oxides

Grignard reagents, reactions with pyridines

Halogens, complexation with pyridines

Hemoglobin with pyridine

Hydrogen peroxide with pyridine

Hydroxylations with pyridine oxide

Imidazo pyridine, reaction with

Indoles coupling with pyridine //-oxides

Iodine complex compounds, with pyridine

Iridium complex compounds anions, with pyridine, cis- and

Iridium complex compounds nonelectrolytes, with pyridine

Iridium complex compounds with pyridine, cis- and trans

Iron chloride oxide , intercalate with pyridine

Iron complex compounds cations, with pyridine

Iron complex compounds, anions with pyridine

Iron complexes, nonelectrolytes with pyridine and isothiocyanate

L-Methyl-4-chloro triazolo pyridine, reaction with secondary

Lewis acid complexation with pyridines

Manganese complexes, cation nonelectrolyte, with pyridine and

Metal atom reactions with pyridines

Methyl bromide, hydrolysis reaction with pyridine

Naphthyridines by Cyclocondensation of Pyridine Substrates with Synthons

Nickel complexes, reaction with pyridines

Nucleophiles pyridine reactivity with

Osmium complexes, reaction with pyridines

Oxidation with Chromium Trioxide-Pyridine Complex

Phenacyl bromide, reaction with pyridine

Phenols reaction with pyridine-sulfur trioxide

Platinum complex compounds with pyridine

Platinum complex compounds with pyridine, cis- and trans

Pyridin-2-ones, 3-amino-, reaction with

Pyridine 1 -oxide—continued reactions with

Pyridine 1-oxide reaction with acetic anhydride

Pyridine 1-oxide reaction with phosphorus oxychloride

Pyridine 1-oxide reaction with sodium acetylide

Pyridine 1-oxide, 2-methyl-, reaction with

Pyridine 1-oxide, 2-methyl-, reaction with Grignard

Pyridine adduct with

Pyridine association with methanol

Pyridine complex with

Pyridine complex with borane

Pyridine complex with chromium trioxide (Collins

Pyridine complexes with boron

Pyridine complexes with metals

Pyridine continued with thionyl chloride

Pyridine cyclodextrin inclusion complexes with

Pyridine derivatives reaction with, phosgene

Pyridine dimerisation, reaction with

Pyridine intercalate with FeCIO

Pyridine intercalate with FeClO

Pyridine molecular complex with bromine

Pyridine reaction with acid chlorides

Pyridine reaction with alkyl-, aryl-lithiums

Pyridine reaction with amide anion

Pyridine reaction with benzylic

Pyridine reaction with dimethyl acetylenedicarboxylate

Pyridine reaction with iodobenzene

Pyridine reaction with isocyanides

Pyridine reaction with methyl propiolate

Pyridine reaction with organolithium reagents

Pyridine reaction with organolithiums

Pyridine reaction with singlet

Pyridine reaction with singlet carbene

Pyridine reactions with alcohols

Pyridine reactions with diphenyldiazomethane

Pyridine reductions with

Pyridine with chromium hexacarbonyl

Pyridine with enolate

Pyridine with formic acid

Pyridine with lithium aluminium hydride

Pyridine with thionyl chloride

Pyridine, 1-oxide, compd. with tantalum

Pyridine, 2,3,4,5-tetrahydro-, Diels-Alder reactions with

Pyridine, 2,3,5-trichloro-, reaction with nucleophiles

Pyridine, 2,3-diamino-, condensation with

Pyridine, 2-amino-, reaction with ester

Pyridine, 2-chloro-5-nitro, reaction with

Pyridine, 3-bromo-, complex with

Pyridine, 4-benzoyl bromination with

Pyridine, 4-substituted, complexes with

Pyridine, 6-methyl-2,3,4,5-tetrahydroN-oxide reaction with allylmagnesium bromide

Pyridine, Perkin condensation with

Pyridine, complex cations, with

Pyridine, complex cations, with chromium

Pyridine, complex cations, with iron

Pyridine, complexes with boron metals

Pyridine, complexes with non-metals—contd localization energies

Pyridine, complexes, with iridium

Pyridine, dihydro, reaction with

Pyridine, dihydro, reaction with alkenes

Pyridine, dihydroanalysis of aldehydes reaction with singlet oxygen

Pyridine, iodocoupling reactions with alkylzinc reagents

Pyridine, reaction with disilenes

Pyridine, reaction with rhenium complexes

Pyridine, reaction with sodium amide

Pyridine, reaction with sodium amide carbonyls

Pyridine, reactions with—continued

Pyridine, reactions with—continued alkylation

Pyridine, reactions with—continued alkyls

Pyridine, reactions with—continued and tautomerism

Pyridine, reactions with—continued aryls

Pyridine, reactions with—continued hydrolysis

Pyridine, reactions with—continued hydroxide

Pyridine, reactions with—continued lithium

Pyridine, reactions with—continued methanol

Pyridine, reactions with—continued potassium

Pyridine, reactions with—continued reduction

Pyridine, reactions with—continued sodium

Pyridine, reactions with—continued substitution

Pyridine, reactions with—continued thionyl chloride

Pyridine-2,3 -dicarboxylic acid reaction with

Pyridine-2,3-dithiol, reaction with 1-chloro2-nitrobenzene

Pyridine-2-thiol, complexes with

Pyridine-2-thiol, complexes with complex

Pyridine-2-thione, reaction with

Pyridine-2-thione, reaction with acetate

Pyridine-3-carbaldehyde, reaction with

Pyridine-3-thiol, reaction with

Pyridine-4-aldehyde, reaction with

Pyridines Annelated with Carbocycles

Pyridines Annelated with Heterocycles

Pyridines compared with azoles

Pyridines cyclizations with

Pyridines mixed, with ketones

Pyridines reaction with thionyl chloride

Pyridines reaction with thiourea

Pyridines reactions with alkyl radicals

Pyridines reactions with boranes

Pyridines reactions with carboranes

Pyridines triosmium clusters with

Pyridines with Lewis acids

Pyridines with acetylenic esters

Pyridines with halogens

Pyridines with metal ions

Pyridines with nitriles

Pyridines with nucleophiles

Pyridines with osmium carbenes

Pyridines with phosphonate substituents

Pyridines, 2-alkylamino-. reaction with

Pyridines, 4-acyloxyreaction with thiols

Pyridines, 4-acyloxyreaction with thiols synthesis of carbothioates

Pyridines, amino-, reaction with

Pyridines, annulated with carbocycles

Pyridines, diamino-, reaction with

Pyridines, tetrahydrocarbene complexes reactions with diphenylacetylene

Pyridine—continued halogeno-, reaction with lithium piperidide

Rare Earth Complexes with Pyridine Type Ligands

Reactions, with pyridine

Selenium tetrachloride with pyridine

Silver complex compounds, cations with pyridine

Sulfur trioxide with pyridine

Sulfur trioxide, addition compounds with pyridine, dimethylaniline

Sulfur trioxide-pyridine, selective sulfation with

Sulfur with pyridine

Tantalum complexes, reaction with pyridines

Thianthrene reaction with pyridine

Titanium complexes, reaction with pyridines

Transition metals, complexes with pyridines

Triphosgene reaction with, pyridine

Vinyl pyridine polymerization with ATRP

With chromium trioxide-pyridine complex

Xenon difluoride, reaction with pyridine

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