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Oxides nitrile

Nitrile oxides are very reactive dipoles which, apart a few members, need to be prepared in situ for their tendency to dimerize to furoxans [86]. This behaviour represents a limit to their use with alkylidenecyclopropanes that is only in part compensated by their reactivity. The cycloadditions of several nitrile oxides with alkylidenecyclopropanes were extensively studied in connection with the rearrangement process leading to dihydropyrid-4-ones 336 [64, 87]. [Pg.50]

A positive feature of the reaction is that nitrile oxides are more regioselective, in cycloadditions to methylenecyclopropanes, compared to nitrones. Only traces (up to 5%) of the 4-spirocyclopropane regioisomers are generally observed with methylenecyclopropanes unsubstituted on the exocyclic double bond. The yields are only moderate, but higher with more stable nitrile oxides (Table 27, entries 5, 6, 10-12). [Pg.50]

The question of regioselectivity of the cycloaddition with alkylidenecyclopropanes was also addressed, in analogy with nitrones, and afforded somewhat different results (Table 28) [91, 67b]. [Pg.50]

Albeit nitrile oxides are more regioselective than nitrones towards MCP, in cycloadditions with alkylidenecyclopropanes they show a lower regiocontrol than nitrones. The same trend, however, on passing from electron-donating to electron-withdrawing substituents is observed. Benzylidenecyclopropane (156) gives (entry 1, Table 28) only a 1 4 mixture (compared with 1 19 with nitrone [Pg.51]

256) of regioisomeric isoxazolines 359 and 360. The carbomethoxymethylene-cyclopropane (52) (entry 3) gives a mixture of isoxazolines 362 and 363 in a 3 1 ratio with inverted regioselectivity as in nitrones, but 25% of 4-spiroregioisomer formed, in sharp contrast with the nitrone result and also with the outcome of [Pg.52]

The conversion of isoxazolines to P-hydroxy ketones can be carried out by H2 in the presence of Raney Ni under various conditions 91 The reaction proceeds cleanly with complete stereospecificity (Eq. 8.62). [Pg.259]

isoxazolines are converted into y-amino alcohols and (3-hydroxy ketones stereoselec-tively. However, the intermolecular cycloaddition involving 1,2-unsymmetrically substituted alkenes such as trans-cinnamyl alcohol proceeds nonregioselectively to give a mixture of the two regioisomers (Eq. 8.63).98 [Pg.260]

Several strategies have been proposed to improve the regioselectivity of nitrile oxide cycloaddition. Kanemasa and coworkers have reported high-rate acceleration and regioselectivity in nitrile oxide cycloadditions to the magnesium alkoxides of allylic and homoallylic alcohols (Eq. 8.64).  [Pg.260]

Another strategy to control the regio- and stereochemistry of cycloaddition is a silicon-tethered reaction, as discussed in the section of nitronates (Section 8.2.3) (Eq. 8.65).100 [Pg.260]

Isoxazolines are good precursors of a,(3-unsaturated ketones.63,94 This transformation is useful for synthesis of polyenes. For example, nitrile oxide cycloaddition chemistry is used to prepare 4-oxo-2-alkenylphosphonates, which are useful to synthesize a long polyethylenic unit via Woodworth-Emmons olefination (Eq. 8.66).101 [Pg.260]


Pyrroles from 1,4-dicarbonyl compounds and ammonia isoxazolines from olefins and nitrile oxides. [Pg.96]

Isocyanates are derivatives of isocyanic acid, HN=C=0, ia which alkyl or aryl groups, as weU as a host of other substrates, are direcdy linked to the NCO moiety via the nitrogen atom. StmcturaHy, isocyanates (imides of carbonic acid) are isomeric to cyanates, ROCMSI (nitriles of carbonic acid), and nitrile oxides, RCMSI—>0 (derivatives of carboxyUc acid). [Pg.446]

Dipolar cycloaddition reactions with azides, imines, and nitrile oxides afford synthetic routes to nitrogen-containing heterocycles (25—30). [Pg.246]

Phototransformation of pyridazine 1,2-dioxides sharply contrasts with that of pyridazine 1-oxides. Pyridazine 1,2-dioxide derivatives give 3a,6a-dihydroisoxazolo[5,4- f]isoxazoles (53) through postulated bisiminoxyl radicals. 3,6-Diphenylpyridazine 1,2-dioxide gives, besides the corresponding bicyclic derivative (53), 3-phenylisoxazole (54) and 4,5-diphenyl-furoxan (55). The last two products can be explained by generation of the nitrile oxide from the intermediate (53) with subsequent dimerization to the furoxan (55 Scheme 18) (79T1267). [Pg.13]

Dihydrofuran (376) and 2,5-dihydrofuran (377) react with nitrile oxides to give furo[2,3-6 ]isoxazoles (378) and furo[3,4-rf]isoxazoles (379), respectively, as cycloadducts. The double bonds of furan, pyrrole and thiophene also react when the nitrile oxide is generated in situ. Thus furan and benzonitrile oxide gave (380), and with 2-methyl-2-oxazoline the cycloadduct (381) was obtained (71AG(E)810). These and related cycloadditions are discussed in Chapter 4.36. [Pg.148]

Hi) Preparation of isoxazoles from nitrile N-oxides The reaction between a nitrile //-oxide and an alkyne is so facile that it is usually sufficient to leave an ether solution of the reactants at room temperature to obtain the desired isoxazole in good yield. The reaction is in general sensitive to the size of the substituent on the alkyne but not on the nitrile -oxide. In the case of poorly reactive alkynes, the difficulty may be overcome by generating the nitrile -oxide in situ and keeping its concentration low. [Pg.68]

A -Isoxazolines are readily available from the 1,3-dipolar cycloaddition of nitrile -oxides with alkenes and from the condensation reaction of ehones with hydroxylamine. Therefore, methods of conversion of -isoxazolines into isoxazoles are of particular interest and of synthetic importance. [Pg.78]

The two major methods of preparation are the cycloaddition of nitrile oxides to alkenes and the reaction of a,/3-unsaturated ketones with hydroxylamines. Additional methods include reaction of /3-haloketones and hydroxylamine, the reaction of ylides with nitrile oxides by activation of alkyl nitro compounds from isoxazoline AT-oxides (methoxides, etc.) and miscellaneous syntheses (62HC(i7)i). [Pg.88]

Nitrile oxides react with a wide variety of alkenic compounds and this reaction may be complicated by dimerization of the nitrile oxide to furoxan in the presence of unreactive double bonds (Scheme 98). [Pg.89]

The reaction of alkyl nitro compounds with acetyl chloride in the presence of an alkenic compound produced a 2-isoxazoline. The mechanism is believed to proceed via a nitrile oxide and is illustrated in Scheme 112 (B-79MI41613). [Pg.92]

Rahman and Clapp decomposed dinitromethane derivatives in DMF in the presence of alkenes to obtain 2-isoxazolines. Without any alkene present, an acid and KNO2 were obtained. They proposed a mechanism which proceeded via a three-membered ring or a nitrocarbene which rearranged to a nitrile oxide (76JOC122, 75MI41612). [Pg.95]

Generalized methods of preparation include the reaction of /3-keto esters (or amides) with hydroxylamine, a-alkynic and a,/3-unsaturated esters (or amides) with hydroxylamine (real or generated in situ), hydroxylamine and nitrile oxides, and /3-keto and a-alkynic nitriles with hydroxylamine (62HC(l7)l, pp. 3,7). [Pg.103]

Alkynic esters react with nitrile oxides in a pH dependent reaction to product isoxazolin-5-ones (Scheme 145) (71JCS(C)86). Alkynic ethers also react with benzonitrile oxide to produce an isoxazole-ether which on treatment with HCl or HBr gave an isoxazolinone (Scheme 145) (63CB1088,58MI41600). The reaction of benzonitrile oxide with dimethoxyketene yielded a dimethyl acetal which was split with acid into the isoxazolinone (Scheme 145) (59G15H). [Pg.104]

Isoxazolin-5-imines were produced by nitrile oxide addition to cyanoacetates (62HC(17)l,p.7), by the reaction of nitrones with phenylacetonitrile (74CB13), and by base addition of nitrosobenzene to nitriles (Scheme 148) (72LA(762)154). [Pg.105]

The reaction of vinylogous amides, or ketoaldehydes, with hydroxylamine produced 4,5,6,7-tetrahydro-l,2-benzisoxazole. A side product is the 2,1-benzisoxazole (Scheme 173) (67AHC(8)277). The ring system can also be prepared by the reaction of cyclohexanone enamines with nitrile oxides (Scheme 173) (78S43, 74KGS901). Base treatment produced ring fission products and photolysis resulted in isomerization to benzoxazoles (76JOC13). [Pg.118]

A variety of 1-azirines are available (40-90%) from the thermally induced extrusion (>100 °C) of triphenylphosphine oxide from oxazaphospholines (388) (or their acyclic betaine equivalents), which are accessible through 1,3-dipolar cycloaddition of nitrile oxides (389) to alkylidenephosphoranes (390) (66AG(E)1039). Frequently, the isomeric ketenimines (391) are isolated as by-products. The presence of electron withdrawing functionality in either or both of the addition components can influence the course of the reaction. For example, addition of benzonitrile oxide to the phosphorane ester (390 = C02Et) at... [Pg.89]


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1,3-Dipolar cycloadditions nitrile oxides + alkenes

1,3-dipolar cycloaddition aryl nitrile oxides

1,3-dipolar cycloaddition of nitrile oxide

1,3-dipolar cycloaddition reactions aliphatic nitrile oxides

1,3-dipolar cycloaddition reactions with nitrile oxides

1,4,2-Oxathiazoles nitrile oxides

1- Butene, 3-methoxyreaction with nitrile oxide

1.2.4- Oxadiazoles nitrile oxides

1.3- Dipolar cycloaddition reactions nitrile oxides

1.3- Dipoles nitrile oxides

2- Nitrosopyridine, reaction with nitrile oxides

4,5-dihydroisoxazole nitrile oxide

4- Dialkylamino but-3-en-2-one reaction with nitrile oxides

4-Dimethylaminopyridine , nitrile oxide

5- Benzoyloxy-2 -furanone, reaction with aryl nitrile oxides

5-Acetoxy-2 -furanone, formation reaction with aryl nitrile oxides

Achiral dipolarophiles, nitrile oxide cycloadditions

Acrylamides, nitrile oxide cycloadditions

Acrylates cycloaddition reactions with nitrile oxides

Addition of nitrile oxides

Aldehydes nitrile oxide intermolecular cycloadditions

Aldehydes nitrile oxide intramolecular cycloadditions

Aldehydes nitrile oxides

Aldoximes nitrile oxides from

Aldoximes oxidation, nitrile oxide generation

Aliphatic nitrile oxides

Alkenes 3+2] cycloaddition with nitrile oxide

Alkenes catalytic nitrile oxide reactions

Alkenes intramolecular reactions, nitrile oxides

Alkenes nitrile oxide cycloadditions

Alkenes nitrile oxides

Alkenes reaction with nitrile oxides

Alkynes reaction with nitrile oxides

Alkynes with nitrile oxide

Allylic alcohols nitrile oxide cycloadditions

Allylic ethers with nitrile oxides

Amines, oxidation to nitriles

Amino polyols, nitrile oxides

Applications of nitrile oxides

Aromaticity, nitrile oxide cycloadditions, dipolar

Aryl nitrile oxides

Aryl nitrile oxides, cycloaddition

Asymmetric reaction nitrile oxide addition

Asymmetric reactions nitrile oxide cycloadditions, diastereoselectivity

Asymmetric reactions nitrile oxides

Azirines nitrile oxides

Biotin nitrile oxide intramolecular cycloadditions

By cycloaddition of nitrile oxides

By the reaction of nitrile oxides

C-X-Y-Fragment (Nitrile Oxide on Solid Phase)

Carbohydrate alkenes, nitrile oxide

Carbohydrate alkenes, nitrile oxide cycloadditions

Carbohydrate derivatives, nitrile oxide

Carbohydrate derivatives, nitrile oxide cycloadditions

Carbonyl compounds nitrile oxide cycloadditions

Catalytic cycloadditions nitrile oxides

Chemoselectivity, nitrile oxide cycloadditions

Chiral auxiliaries, diastereoselectivity, asymmetric nitrile oxide cycloadditions

Compactin via nitrile oxide cyclization

Cyclization, radicals with nitrile oxides

Cycloaddition intramolecular nitrile oxide [INOC

Cycloaddition of nitrile oxides with alkenes

Cycloaddition reactions of nitrile oxides with alkenes

Cycloaddition with nitrile oxides

Cycloadditions Involving Nitrile Oxides

Cycloadditions of nitrile oxides

Diastereoselectivity nitrile oxide cycloadditions

Diisopropyl nitrile oxide cycloadditions, chiral

Diisopropyl nitrile oxides

Dipolar cycloadditions of nitrile oxides

Dipolar cycloadditions with nitrile oxides

Dipolar nitrile oxide-based

Dipolarophiles nitrile oxide cycloadditions

Dipole structures nitrile oxides

Electron-Deficient C2 Fragments (Cycloadditions Involving Azomethines, Nitrones, Nitrile Oxides, and Dienes)

Enantioselectivity nitrile oxide cycloadditions

Esters nitrile oxide cycloadditions

Ethers, vinyl reaction with nitrile oxides

External reagents nitrile oxides

Facial selectivity nitrile oxide cycloadditions

Five-membered rings nitrile oxide intramolecular cycloadditions

From nitrile oxides

Furans nitrile oxide intramolecular cycloadditions

Furoxans intramolecular nitrile oxide cycloadditions

Furoxans nitrile oxides

Furoxans thermolysis, nitrile oxide generation

Grignard reagents, nitrile oxide cycloadditions

Hydrogen bonding, nitrile oxide cycloadditions

Hydrogen peroxide nitriles, oxidation with

Hydrogenation of nitrile oxide cycloaddition product

Hydroxamic acid chlorides nitrile oxides from

Hydroximoyl halide, nitrile oxide generation

Hydroxy ketones, synthesis from nitrile oxides

Intermolecular cycloadditions achiral nitrile oxides/chiral olefins

Intermolecular cycloadditions achiral nitrile oxides/olefins

Intramolecular nitrile oxide cycloaddition

Intramolecular nitrile oxide cycloaddition reaction

Intramolecular nitrile oxide cycloaddition synthesis

Intramolecular nitrile oxide-olefin

Intramolecular nitrile oxide-olefin cycloaddition

Intramolecular reaction nitrile oxide cyclization

Isocyanates nitrile oxides

Isocyanates, addition from nitrile oxide

Isothiocyanates nitrile oxides

Isoxazole from nitrile oxides

Isoxazoles by a Consecutive 3CR of Acid Chlorides, Alkynes, and Nitrile Oxides

Isoxazoles from nitrile oxides

Isoxazoles, from alkenes and nitrile oxides cycloaddition

Isoxazoline compounds nitrile oxide cycloadditions

Isoxazolines synthesis via nitrile oxide cyclization

Kinetic data, nitrile oxide cycloadditions

Lactones nitrile oxide intramolecular cycloadditions

Lewis acids nitrile oxide cycloadditions

Macrocyclic compounds, nitrile oxide

Magnesium alkoxides, nitrile oxide

Maytansine synthesis via nitrile oxide cyclization

Mesityl nitrile oxide

Mesityl nitrile oxide, 1,3-dipolar cycloaddition

Nitrile /V-oxides

Nitrile AT-oxides

Nitrile Oxides Mukaiyama procedure

Nitrile Oxides acids

Nitrile Oxides and Nitriles

Nitrile Oxides from 1,2,4-oxadiazoles

Nitrile Oxides from furazans

Nitrile Oxides from furoxans

Nitrile Oxides from isoxazolines

Nitrile Oxides oxidative dehydrogenation

Nitrile Oxides, Imines, and Sulfides

Nitrile TV-oxides

Nitrile oxide addition

Nitrile oxide cyclization

Nitrile oxide cyclization intramolecular

Nitrile oxide cycloaddition

Nitrile oxide formation

Nitrile oxide precursor

Nitrile oxide, Benzo

Nitrile oxide, Carbamoyl

Nitrile oxide, Functionalized

Nitrile oxide, cycloaddition structure

Nitrile oxide, cycloaddition synthesis

Nitrile oxides 1,3-dipolar cycloadditions

Nitrile oxides 1,4,2,5-dioxadiazines

Nitrile oxides INOC reaction

Nitrile oxides achiral olefins, with chiral auxiliaries

Nitrile oxides aldol” reduction-hydrolysis

Nitrile oxides aldol” ring cleavage, intermediates

Nitrile oxides aldoximes

Nitrile oxides alkene chiral centeres

Nitrile oxides aminoalcohol ring cleavage

Nitrile oxides aryl-bridged

Nitrile oxides as 1,3-dipoles

Nitrile oxides catalytic reactions

Nitrile oxides chiral dipolarophiles

Nitrile oxides cyclizations

Nitrile oxides cycloadditions

Nitrile oxides defined

Nitrile oxides deoxygenation

Nitrile oxides diastereoselective

Nitrile oxides diastereoselectivity

Nitrile oxides dimerization

Nitrile oxides dipolar cycloaddition

Nitrile oxides dipole/dipolarophiles

Nitrile oxides double bonds

Nitrile oxides from 2 molecules)

Nitrile oxides from nitrolic acids

Nitrile oxides frontier orbitals

Nitrile oxides functional derivatives

Nitrile oxides furoxan thermolysis

Nitrile oxides industrial applications

Nitrile oxides intramolecular cycloadditions

Nitrile oxides isoxazoles

Nitrile oxides isoxazoline compounds

Nitrile oxides isoxazoline ring cleavage

Nitrile oxides isoxazoline synthesis

Nitrile oxides mechanism

Nitrile oxides mechanistic studies and calculations

Nitrile oxides natural products

Nitrile oxides nitromethyl compounds

Nitrile oxides olefin regioselectivity

Nitrile oxides oxide

Nitrile oxides polycyclic isoxazolines and furoxans

Nitrile oxides polyols

Nitrile oxides reduction

Nitrile oxides regioselectivity

Nitrile oxides relative reactivity

Nitrile oxides stereoselectivity

Nitrile oxides structural chemistry

Nitrile oxides synthesis applications

Nitrile oxides synthesis from

Nitrile oxides tandem reaction sequences

Nitrile oxides to olefins

Nitrile oxides tropones

Nitrile oxides with acrylates

Nitrile oxides, alkenyl

Nitrile oxides, alkenyl cyclization

Nitrile oxides, alkenyl intramolecular cycloaddition

Nitrile oxides, alkynyl

Nitrile oxides, chiral, diastereoselectivity

Nitrile oxides, cycloaddition reactions

Nitrile oxides, cycloaddition with electron-deficient dipolarophiles

Nitrile oxides, cycloaddition with from primary nitro compounds

Nitrile oxides, cycloaddition with furoxans

Nitrile oxides, cycloadditions with alkenes

Nitrile oxides, cycloadditions, furan

Nitrile oxides, cycloalkenyl

Nitrile oxides, dimerisation

Nitrile oxides, dipolar cycloaddition with

Nitrile oxides, furanylcyclization

Nitrile oxides, reaction with benzoquinones

Nitrile oxides, reactions

Nitriles N-oxides

Nitriles formation from nitrile oxides

Nitriles from nitrile oxides

Nitriles nitrile oxides

Nitriles nitrile oxides

Nitriles oxidation

Nitriles oxidative decyanation

Nitriles silver oxide

Nitriles via oxidative cleavage of alkenes

Nitriles, oxidative cleavage

Nitroalkanes nitrile oxide generation

Nitrones and nitrile oxides as 1,3-dipoles

Nitrones nitrile oxide intermolecular cycloadditions

Nitrones nitrile oxide intramolecular cycloadditions

Of nitrile oxides with alkenes

Of nitrile oxides with alkenes compounds

Olefins chiral nitrile oxides

Olefins nitrile oxide cycloadditions

Oxazolines => nitrile oxides

Oxidation of Amides, Hydrazides, and Nitriles

Oxidation of nitriles

Oxidation of nitriles and amines

Oxidation state nitriles)

Oxidative Addition of Nitriles

Oxidative nitriles

Oxidative nitriles

Oximes nitrile oxide intramolecular cycloadditions

Oximes reaction to form nitrile oxide

Paliclavine via nitrile oxide cyclization

Paraffins nitrile oxides from

Porphyrinic nitrile oxides

Reaction with nitrile oxides

Reactions of Nitrile Oxides

Regioselectivity nitrile oxide cycloadditions

Relative reactivity, nitrile oxide cycloadditions

Relative reactivity, nitrile oxide cycloadditions relativity

Sarkomycin via nitrile oxide cyclization

Sodium hypochlorite, nitrile oxide generation

Solvent effects, nitrile oxide cycloadditions

Stable nitrile oxides

Stereoselectivity nitrile oxide cycloadditions

Uracils reaction with nitrile oxides

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