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Benzenemethanamine, a-ethenyl-N-phenyl- is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

35755-81-8

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35755-81-8 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 35755-81-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 3,5,7,5 and 5 respectively; the second part has 2 digits, 8 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 35755-81:
(7*3)+(6*5)+(5*7)+(4*5)+(3*5)+(2*8)+(1*1)=138
138 % 10 = 8
So 35755-81-8 is a valid CAS Registry Number.

35755-81-8SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name 3-Phenyl-3-(phenylamino)-1-propene

1.2 Other means of identification

Product number -
Other names N-phenyl-(1-phenylallyl)amine

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:35755-81-8 SDS

35755-81-8Downstream Products

35755-81-8Relevant academic research and scientific papers

Synthetic method of allylamine

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Paragraph 0017; 0018, (2017/01/02)

The invention provides a synthetic method of allylamine compounds with substituted allyl alcohol and aromatic amines as raw materials through induction of a titanium metal intermediate. The invention relates to a secondary amine substituted by an allyl gr

A computationally designed titanium-mediated amination of allylic alcohols for the synthesis of secondary allylamines

Sun, Zunming,Wang, Qingxia,Xu, Yi,Wang, Zhihong

, p. 84284 - 84289 (2015/10/28)

A computational design was inspired by previous mechanistic studies and the DFT-guided reactions were implemented in the synthesis of secondary allylamines. The participation of titanium imido intermediates facilitated the reaction and the closed transiti

Origins of Regioselectivity in Iridium Catalyzed Allylic Substitution

Madrahimov, Sherzod T.,Li, Qian,Sharma, Ankit,Hartwig, John F.

, p. 14968 - 14981 (2015/12/08)

Detailed studies on the origin of the regioselectivity for formation of branched products over linear products have been conducted with complexes containing the achiral triphenylphosphite ligand. The combination of iridium and P(OPh)3 was the first catalytic system shown to give high regioselectivity for the branched product with iridium and among the most selective for forming branched products among any combination of metal and ligand. We have shown the active catalyst to be generated from [Ir(COD)Cl]2 and P(OPh)3 by cyclometalation of the phenyl group on the ligand and have shown such species to be the resting state of the catalyst. A series of allyliridium complexes ligated by the resulting P,C ligand have been generated and shown to be competent intermediates in the catalytic system. We have assessed the potential impact of charge, metal-iridium bond length, and stability of terminal vs internal alkenes generated by attack at the branched and terminal positions of the allyl ligand, respectively. These factors do not distinguish the regioselectivity for attack on allyliridium complexes from that for attack on allylpalladium complexes. Instead, detailed computational studies suggest that a series of weak, attractive, noncovalent interactions, including interactions of H-bond acceptors with a vinyl C - H bond of the alkene ligand, favor formation of the branched product with the iridium catalyst. This conclusion underscores the importance of considering attractive interactions, as well as repulsive steric interactions, when seeking to rationalize selectivities.

Rhodium-catalyzed regioselective amination of secondary allylic trichloroacetimidates with unactivated aromatic amines

Arnold, Jeffrey S.,Stone, Robert F.,Nguyen, Hien M.

supporting information; experimental part, p. 4580 - 4583 (2010/12/24)

The use of unactivated aromatic amines in the rhodium-catalyzed regioselective amination of secondary allylic trichloroacetimidates is explored. The desired N-arylamines are obtained in high yields and regioselectivity, favoring the branched amination pro

New 1,2,4,5-tetrakis-(N-imidazoliniummethyl)benzene and 1,2,4,5-tetrakis-(N-benzimidazoliummethyl)benzene salts as N-heterocyclic tetracarbene precursors: synthesis and involvement in ruthenium-catalyzed allylation reactions

Gürbüz, Nevin,Demir, Serpil,?zdemir, Ismail,Cetinkaya, Bekir,Bruneau, Christian

experimental part, p. 1346 - 1351 (2010/04/02)

New tetraimidazolinium and tetrabenzimidazolium salts have been prepared. Upon reaction with tBuOK, they generate carbene ligands, which were associated in situ to [RuCp*(MeCN)3]PF6 to produce new ruthenium catalysts that

Iridium-catalyzed asymmetric allylic substitutions-very high regioselectivity and air stability with a catalyst derived from dibenzo[a,e]cyclooctatetraene and a phosphoramidite

Spiess, Stephanie,Welter, Carolin,Franck, Geraldine,Taquet, Jean-Philippe,Helmchen, Guenter

supporting information; scheme or table, p. 7652 - 7655 (2009/04/11)

A final tweak: A new phosphoramidite iridium catalyst (see scheme) allows allylic substitutions to be run with a higher degree of regioselectivity than with other iridium catalysts and under aerobic conditions. Mechanistic aspects, in particular, the reversibility of the catalyst formation by C-H activation, are also presented. LL=dibenzocyclooctatetraene.

Synthesis of secondary amines by titanium-mediated transfer of alkenyl groups from alcohols

Ramanathan, Balasubramanian,Odom, Aaron L.

, p. 9344 - 9345 (2007/10/03)

Reaction of Ti(NMe2)4 with allyl alcohols and primary amines leads to the selective formation of secondary allylic amines. The allyl transfer from the alcohol to the amine occurs with selective allylic transposition. Due to substituent effects in the reactions, we postulate that the reaction occurs through a [2 + 2]/retro-[2 + 2]-cycloaddition mechanism. It was also found that a similar reaction could be accomplished with homoallylic alcohol. In this case, the more complex mechanism leads to the formation of 1-aza-spiro[5.5]undecane. Possible pathways for the homoallylic transfer and cyclization are discussed. Copyright

Highly efficient alkylation to ketones and aldimines with Grignard reagents catalyzed by zinc(II) chloride

Hatano, Manabu,Suzuki, Shinji,Ishihara, Kazuaki

, p. 9998 - 9999 (2007/10/03)

A highly efficient alkylation to ketones and aldimines with Grignard reagents in the presence of catalytic trialkylzinc(II) ate complexes derived from ZnCl2 (10 mol %) in situ was developed. This simple Zn(II)-catalyzed alkylation could minimize the well-known but serious problems with the use of only Grignard reagents, which leads to reduction and aldol side products, and the yield of desired alkylation products could be improved. Copyright

Photogeneration and reactivity of 1,n-diphenyl-1,n-azabiradicals

Leo, Edgar A.,Domingo, Luis R.,Miranda, Miguel A.,Tormos, Rosa

, p. 4439 - 4444 (2007/10/03)

The 1,5-diphenyl-1,5-azapentanediyl biradical Ia was generated by photolysis of 1,2-diphenylazacyclopentane (pyrrolidine 1a). Among the reaction pathways followed by Ia, C-N bond reformation with ring closure was found to be the predominating process, as determined by separate irradiation of either of the pure enantiomers of 1a. Disproportionation was a minor process and took place only via H abstraction by the C5 benzylic radical. Another minor pathway was C5-aryl coupling, with formation of 5-phenyl-2,3,4,5-tetrahydro-1H-benzo[b] azepine (4a), which is equivalent to photo-Claisen rearrangement of 1a. Likewise, the 1,4-diphenyl-1,4-azabutanediyl biradical Ib was generated by photolysis of 1,2-diphenylazacyclobutane (azetidine 1b). This species underwent predominating C2-C3 cleavage, as indicated by the extensive styrene formation. Although NI-C4 bond reformation also took place, this is not the major pathway occurring from Ib. Besides, C4-aryl coupling to give 4-phenyl-1,2,3,4- tetrahydroquinoline (4b) was also observed. All the possible reaction pathways were theoretically studied at the UB3LYP/6-31G* computational level; the results were found to be in good agreement with the experimental observations.

Allylic amination via decarboxylative C-N bond formation

Mellegaard-Waetzig, Shelli R.,Rayabarapu, Dinesh Kumar,Tunge, Jon A.

, p. 2759 - 2762 (2007/10/03)

This manuscript details the development of a palladium-catalyzed allylic amination that proceeds via decarboxylation of allylic carbamates. Both saturated and aromatic heterocycles undergo decarboxylative rearrangement in good yields. The mechanism of allylation of heteroaromatic amines involves the formation of π-allyl palladium complexes followed by decarboxylation of the carbamate. Finally, the heteroaromatic anion equivalent is allylated to provide allylic amines. Georg Thieme Verlag Stuttgart.

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