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Triethylamine, 2-

The radical cation and neutral radical derived from triethylamine are shown below. [Pg.1602]

Figure B 1.16.9 shows background-free, pseudo-steady-state CIDNP spectra of the photoreaction of triethylamine with (a) anthroquinone as sensitizer and (b) and (c) xanthone as sensitizer. Details of the pseudo-steady-state CIDNP method are given elsewhere [22]. In trace (a), no signals from the p protons of products 1 (recombination) or 2 (escape) are observed, indicating that the products observed result from the radical ion pair. Traces (b) and (c) illustrate a usefiil feature of pulsed CIDNP net and multiplet effects may be separated on the basis of their radiofrequency (RF) pulse tip angle dependence [21]. Net effects are shown in trace (b) while multiplet effects can... Figure B 1.16.9 shows background-free, pseudo-steady-state CIDNP spectra of the photoreaction of triethylamine with (a) anthroquinone as sensitizer and (b) and (c) xanthone as sensitizer. Details of the pseudo-steady-state CIDNP method are given elsewhere [22]. In trace (a), no signals from the p protons of products 1 (recombination) or 2 (escape) are observed, indicating that the products observed result from the radical ion pair. Traces (b) and (c) illustrate a usefiil feature of pulsed CIDNP net and multiplet effects may be separated on the basis of their radiofrequency (RF) pulse tip angle dependence [21]. Net effects are shown in trace (b) while multiplet effects can...
Figure Bl.16.9. Background-free, pseudo-steady-state CIDNP spectra observed in the photoreaction of triethylamine with different sensitizers ((a), antliraquinone (b), xanthone, CIDNP net effect (c), xanthone, CIDNP multiplet effect, amplitudes multiplied by 1.75 relative to the centre trace) in acetonitrile-d3. The stmctiiral formulae of the most important products bearing polarizations (1, regenerated starting material 2, N,N-diethylvinylamine 3, combination product of amine and sensitizer) are given at the top R denotes the sensitizer moiety. The polarized resonances of these products are assigned in the spectra. Reprinted from [21]. Figure Bl.16.9. Background-free, pseudo-steady-state CIDNP spectra observed in the photoreaction of triethylamine with different sensitizers ((a), antliraquinone (b), xanthone, CIDNP net effect (c), xanthone, CIDNP multiplet effect, amplitudes multiplied by 1.75 relative to the centre trace) in acetonitrile-d3. The stmctiiral formulae of the most important products bearing polarizations (1, regenerated starting material 2, N,N-diethylvinylamine 3, combination product of amine and sensitizer) are given at the top R denotes the sensitizer moiety. The polarized resonances of these products are assigned in the spectra. Reprinted from [21].
Physical Properties, (i) Triethylamine, b.p. 90 , tri-n-propylamine, b.p. 156 , tri biitylamine, b.p. 212 ", are liquids with a fishy odour, and with decreasing solubility in water. [Pg.377]

The second type of system is characterised by decreasing mutual solubility with rise of temperature. As the temperature is lowered the mutual solubilities increase and below a certain critical temperature the two liquids become miscible in all proportions. A typical example is triethylamine and water. The behaviour of this system with respect to... [Pg.18]

The following alternative method may be used. Dissolve 0 01 mol of the phenol and 0 01 mol of a-naphthyl wo-cyanate in 20 ml. of light petroleum (b.p. 60-80°), add 2 drops of triethylamine (or, less satisfactorily, 2 drops of pyridine), reflux for 5 minutes, and allow to crystallise. Filter oflF the crystalline sohd through a sintered glass funnel. [Pg.684]

Basic catalysts other than alkali acetates have been employed in the Perkin reaction thus salicylaldehyde condenses with acetic anhydride in the presence of triethylamine to yield coumarin (tlie lactone of the cis form of o-hydroxy-cinnamio acid) together with some of the acetyl derivative of the trans form (o-acetoxycoumaric acid) ... [Pg.707]

The mechanism of the reaction, which is of the aldol type, involves the car-bonyl group of tlie aldehyde and an active methylene group of the anhydride the function of the basic catalyst B (acetate ion 0H3000 or triethylamine N(0,Hb)j) is to form the anion of the active hydrogen component, i.e., by the extraction of a proton from the anhydride ... [Pg.707]

The preparation of a-phenylclnnamlc acid from benzaldehyde, phenylacetic acid, acetic anhydride and triethylamine is described. Presumably equilibria are set up between phenylacetic acid and acetic anhydride to form phenylacetic anhydride, a mixed anhydride or both ... [Pg.708]

The a-carbon atom of the phenylacetyl group is more susceptible to attack by the basic catalyst (triethylamine) than the acetyl group hence a-phenyl-cinnamic acid, but no cinnamic acid, is obtained. [Pg.708]

Coumarin. In a 250 ml. round-bottomed flask, provided with a small reflux condenser and a calcium chloride drying tube at the top, place 2 1 g, of salicylaldehyde, 2 0 ml. of anhydrous triethylamine and 5 0 ml. of acetic anhydride, and reflux the mixture gently for 12 hours. Steam distil the mixture from the reaction flask and discard the distillate. Render the residue in the flask basic to litmus with solid sodium bicarbonate, cool, filter the precipitated crude coumarin at the pump and wash it with a little cold water. Acidify the filtrate to Congo red with... [Pg.713]

Alternatively, use the following procedure in which triethylamine replaces potassium acetate as the basic catalyst. Place 2 1 g. (2-0 ml.) of purified benzaldehyde, 2 0 ml. of anhydrous triethylamine and 5 0 ml. of A.R. acetic anhydride in a 200 ml. round-bottomed flask, equipped with a short reflux condenser and a calcium chloride drying tube. Boil the solution gently for 24 hours—heating may be interrupted. Incorporate a steam distillation apparatus in the flask and steam distil until the distillate is no longer cloudy (about 100 ml.) and then collect a further 50 ml. of the distillate di ard the steam distillate. Transfer the residue in the flask to a 400 ml. beaker, add water until the vplume is about 200 ml., then 0 2 g. of decolourising carbon, and boil for a few minutes. Filter the hot solution, and acidify the hot filtrate with 1 1 hydrochlorioiaoid... [Pg.1113]

Chapter IV. a-Chloromethylnaphthalene (IV,23) benzylamine (Gabriel synthesis) (IV,39) i r.N -dialkylanilines (from amines and trialkyl orthophosphates) (IV,42) a-naphthaldehyde (Sommelet reaction) (IV,120) a-phenyl-cinnamic acid (Perkin reaction using triethylamine) (IV,124) p-nitrostyrene (IV,129) p-bromonaphthalene and p naphthoic acid (from 2 naphthylamine-1 -sulphonic acid) (IV,62 and IV,164) diphenic acid (from phenanthrene) (IV,165). [Pg.1191]

A cousin to this reduction is one using stannous chloride (a.k.a. SnCb, a.k.a. Tin chloride) which is done exactly as the calcium one except that about lOOg of SnCb is used in place of the Mg or Ca and the addition occurs at room temperature and the solution is stirred for one hour rather than 15 minutes. Some very good reductions that operate almost exclusively at room temperature with no pressure and give almost 100% yields are to follow. The only reason Strike did not detail these methods is that some of the chemicals involved are a little less common than Strike is used to but all are available to the public. These alternatives include acetlylacetone and triethylamine [73], propanedithlol and trieth-ylamine [74], triphenylphosphine [75], NaBH4 with phase transfer catalyst [76], H2S and pyridine [77], and palladium hydrox-ide/carbon with hydrazine [78], stannous chloride dihydrate [85]. [Pg.155]

Note. 3. All glassware of the distillation apparatus must be rinsed before use with a dilute solution of triethylamine Or another volatile amine in diethyl ether. Traces of acid on the glass walls may cause isomerization to H2C=CH-C(OCH3)=C(CH3)(OC2H5). [Pg.41]

Hate 3. All glassware used for the work-up and distillation must be rinsed with a dilute solution of triethylamine in diethyl ether or acetone in order to be sure that traces of acids on the glass walls have been neutralized. Allenic sulfides with the structure C=C=C(SR)-CH- isomerize under the influence of acids to give conjugated dienes, C=C-C(SR)=C. [Pg.47]

The distillate was dissolved in a mixture of 350 ml of dry diethyl ether and 45 g of dry triethylamine (dried over powdered KQH). Trimethylchlorosilane (45 g) was added in 20 min with cooling at about 10°C. After standing for 1 h at room temperature the precipitate was sucked off on a dry sintered-glass funnel and rinsed with pentane. The filtrate was concentrated in a water-pump vacuum- The small amount of salt which precipitated during this operation was removed by a second suction filtration. Subsequent distillation afforded the trimethyl silyl ether, b.p. 100°C/15 mmHg, 1.4330, in 944 yield. [Pg.129]

Note 2. Traces of unreacted triethylamine might cause partial isomerization of the allenyl sulfoxide into the propargyl sulfoxide. The methyl iodide is added to ensure that no triethylamine remains. [Pg.197]

To a mixture of 100 ml of dry dichloromethane, 0.10 mol of propargyl alcohol and 0.11 mol of triethylamine was added a solution of 0.05 mol of Ph2PCl in 75 ml of dichloromethane in 3 min between -80 and -90°C. The cooling bath was removed, and when the temperature had reached 10°C, the reaction mixture was poured into a solution of 2.5 ml of 362 HCl in 100 ml of water. After vigorous shaking the lower layer was separated and the aqueous layer was extracted twice with 25-ml portions of dichloromethane. The combined solutions were washed twice with water, dried over magnesium sulfate and then concentrated in a water-pump vacuum, giving almost pure allenyl phosphine oxide as a white solid, m.p. 98-100 5, in almost 1002 yield. [Pg.199]

A mixture of 0.10 mol of the acetylenic alcohol, 0.12 mol of triethylamine and 200 ml of dichloromethane (note 1) was cooled to -50°C. Methanesulfinyl chloride (0.12 mol) (for its preparation from CH3SSCH3, (08300)30 and chlorine, see Ref. 73) was added in 10 min at -40 to -50°0. A white precipitate was formed immediately. After the addition the cooling bath was removed and the temperature was allowed to rise to -20°0, then the mixture was vigorously shaken or stirred with 100 ml of water. The lower layer was separated off and the aqueous layer was extracted twice with 10-ml portions of CH2CI2. The combined solutions were dried over magnesium sulfate and concentrated in a water-pump vacuum (note 2). The yields of the products, which are pure enough (usually 96%) for further conversions, are normally almost quantitative. [Pg.223]

To illustrate the specific operations involved, the scheme below shows the first steps and the final detachment reaction of a peptide synthesis starting from the carboxyl terminal. N-Boc-glycine is attached to chloromethylated styrene-divinylbenzene copolymer resin. This polymer swells in organic solvents but is completely insoluble. ) Treatment with HCl in acetic acid removes the fert-butoxycarbonyl (Boc) group as isobutene and carbon dioxide. The resulting amine hydrochloride is neutralized with triethylamine in DMF. [Pg.232]

Organoboranes undergo transmetallation. 1-Hexenylboronic acid (438) reacts with methyl acrylate via the transmetallation with Pd(OAc)2, giving methyl 2,4-nonadienoate (439)[399], The ( )-alkenylboranes 440, prepared by the hydroboration of terminal alkynes, are converted into the alkylated ( )-alkenes 441 by treatment with an equivalent amount of Pd(OAc)2 and triethylamine[400]. The ( )-octenylborane 442 reacts with CO in MeOH in the... [Pg.84]

Carboxylic acids react with butadiene as alkali metal carboxylates. A mixture of isomeric 1- and 3-acetoxyoctadienes (39 and 40) is formed by the reaction of acetic acid[13]. The reaction is very slow in acetic acid alone. It is accelerated by forming acetate by the addition of a base[40]. Addition of an equal amount of triethylamine achieved complete conversion at 80 C after 2 h. AcONa or AcOK also can be used as a base. Trimethylolpropane phosphite (TMPP) completely eliminates the formation of 1,3,7-octatriene, and the acetoxyocta-dienes 39 and 40 are obtained in 81% and 9% yields by using N.N.N M -tetramethyl-l,3-diaminobutane at 50 in a 2 h reaction. These two isomers undergo Pd-catalyzed allylic rearrangement with each other. [Pg.429]

Formic acid behaves differently. The expected octadienyl formate is not formed. The reaction of butadiene carried out in formic acid and triethylamine affords 1,7-octadiene (41) as the major product and 1,6-octadiene as a minor product[41-43], Formic acid is a hydride source. It is known that the Pd hydride formed from palladium formate attacks the substituted side of tt-allylpalladium to form the terminal alkene[44] (see Section 2.8). The reductive dimerization of isoprene in formic acid in the presence of Et3N using tri(i)-tolyl)phosphine at room temperature afforded a mixture of dimers in 87% yield, which contained 71% of the head-to-tail dimers 42a and 42b. The mixture was treated with concentrated HCl to give an easily separable chloro derivative 43. By this means, a- and d-citronellol (44 and 45) were pre-pared[45]. [Pg.430]

Chlorosulfonyl isocyanate has been used to introduce 3-carboxamide groups. The initial product, an A -chlorosulfonylcarboxamide, is treated with tri-n-butylstannanc to form the primary carboxamide[15], 3-Cyano groups can also be introduced using chlorosulfonyl isocyanate. The intermediate N-chlorosulfonylindole-3-carboxamide is converted to 3-cyanoindole on reaction with triethylamine[16] or DMF[17],... [Pg.113]


See other pages where Triethylamine, 2- is mentioned: [Pg.153]    [Pg.158]    [Pg.198]    [Pg.201]    [Pg.166]    [Pg.404]    [Pg.1602]    [Pg.251]    [Pg.373]    [Pg.551]    [Pg.269]    [Pg.661]    [Pg.683]    [Pg.683]    [Pg.713]    [Pg.96]    [Pg.96]    [Pg.121]    [Pg.39]    [Pg.43]    [Pg.57]    [Pg.234]    [Pg.218]    [Pg.224]    [Pg.239]    [Pg.328]   
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4-hydroxyphenyl triethylamine

4-methoxyphenyl triethylamine

Acetic anhydride-Triethylamine

Alkyl amines triethylamine

Aluminum hydride-triethylamine

Bases Triethylamine

Bases Triethylamine-Lithium bromide

Borane triethylamine complex

Buffers triethylamine

CH2Cl2-triethylamine mixture

Carbon nanotubes triethylamine

Cesium triethylamine

Complexes and triethylamine

Diazomethane, reaction with D-camphor-10-sulfonyl chloride and triethylamine

Dicyclohexylboron triflate-triethylamine

Dimethyl sulphoxide-triethylamine

Diphenylphosphino)triethylamine

Episulfone from D-camphor-10-sulfonyl chloride with diazomethane ard triethylamine

Episulfones as intermediates in the chlorides, triethylamine, and diazoalkanes

Ethyl chloroformate triethylamine

Ethyl iodide/triethylamine reaction

F Triethylamine

Fluorescence with triethylamine

Formic acid-triethylamine

Formic acid-triethylamine hydrogenation with

Formic acid-triethylamine reduction with

Help bases triethylamine

Hydrogen fluoride triethylamine complex

Hydrogen peroxide-triethylamine

Iron-triethylamine complex

Methyl 3,4-0-benzylidene chloride-triethylamine

Methyl cations triethylamine

Phase diagram water-triethylamine

Phosgene and triethylamine

Potassium triethylamine

Protonated triethylamine

Reversible triethylamine

Silver acetate triethylamine-catalyzed reaction

Solvent cyclohexane-acetone-triethylamine

Sulfur trioxide-triethylamine

TRIETHYLAMINE.248(Vol

Titanium chloride-triethylamine

Triethylamine , catalyst

Triethylamine , chlorination

Triethylamine 1,1 -dimethyl

Triethylamine 2,2 ,2"-tris

Triethylamine 2,2,2-Trifluoroethanol

Triethylamine A/-oxide

Triethylamine N-oxide

Triethylamine Trifluoromethanesulfonic acid

Triethylamine Trimethylamine

Triethylamine Triols

Triethylamine Tripeptide

Triethylamine Triphenylphosphine

Triethylamine Triphenylphosphine oxide

Triethylamine Triple bonds

Triethylamine adsorption

Triethylamine alane

Triethylamine alcohol oxidation

Triethylamine aluminum complex

Triethylamine amines

Triethylamine and water

Triethylamine as catalyst for reaction

Triethylamine as solvents

Triethylamine basicity

Triethylamine bicarbonate

Triethylamine borane

Triethylamine boron trifluoride

Triethylamine butyrolactone with

Triethylamine carbonate

Triethylamine carbonyl group

Triethylamine carboxy group

Triethylamine catalysis

Triethylamine cation radical

Triethylamine chloride

Triethylamine chloromethylated polystyrene

Triethylamine complexes

Triethylamine compound, with

Triethylamine concentration

Triethylamine containing

Triethylamine data

Triethylamine dehydrochlorination of cyclohexanecarbonyl chloride

Triethylamine endoperoxides

Triethylamine flash point

Triethylamine formation mechanism

Triethylamine hydrobromide

Triethylamine hydrochloride

Triethylamine hydrochloride, initiation

Triethylamine hydrofluoride

Triethylamine in synthesis of nicotinic anhydride

Triethylamine mass spectrum

Triethylamine metal complexes

Triethylamine olefination

Triethylamine oxidation

Triethylamine perchlorate

Triethylamine phosphate

Triethylamine picrate

Triethylamine presence

Triethylamine protecting group

Triethylamine reaction rate with methyl iodide

Triethylamine reaction with, phosgene

Triethylamine rearrangement

Triethylamine sensors

Triethylamine systems

Triethylamine titration

Triethylamine trihydrofluoride

Triethylamine trishydrofluoride

Triethylamine with phosgene

Triethylamine, covalent compound

Triethylamine, decomposition

Triethylamine, in synthesis

Triethylamine, in synthesis of diazoketones

Triethylamine, physical properties

Triethylamine, purification

Triethylamine, reaction with

Triethylamine, reaction with dichloromethane

Triethylamine, reactions

Triethylamine-Lithium bromide

Triethylamine-Magnesium bromide

Triethylamine-water mixtures

Triethylamines

Trihydroxy-triethylamine

With triethylamine

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