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1-Piperidinyl(p-tolyl)methanone is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

13707-23-8

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13707-23-8 Usage

Synonyms

1-(4-methylphenyl)-1-piperidin-1-yl-ethanone, 4-methyl-1-(1-oxo-1-piperidinyl)-benzene

Category

Chemical compound, synthetic intermediate

Appearance

White solid

Molecular weight

217.3 g/mol

Melting point

77-79°C

Usage

Production of pharmaceuticals, organic compounds, and various drugs

Application

Medicinal chemistry research

Safety precautions

Handle and store according to proper safety procedures and regulations due to potential hazards.

Check Digit Verification of cas no

The CAS Registry Mumber 13707-23-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,3,7,0 and 7 respectively; the second part has 2 digits, 2 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 13707-23:
(7*1)+(6*3)+(5*7)+(4*0)+(3*7)+(2*2)+(1*3)=88
88 % 10 = 8
So 13707-23-8 is a valid CAS Registry Number.
InChI:InChI=1/C13H17NO/c1-11-5-7-12(8-6-11)13(15)14-9-3-2-4-10-14/h5-8H,2-4,9-10H2,1H3

13707-23-8SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 19, 2017

Revision Date: Aug 19, 2017

1.Identification

1.1 GHS Product identifier

Product name (4-methylphenyl)-piperidin-1-ylmethanone

1.2 Other means of identification

Product number -
Other names N-(p-methylbenzoyl)piperidine

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:13707-23-8 SDS

13707-23-8Relevant academic research and scientific papers

Synthesis and structural diversity of heterobimetallic lanthanide-potassium complexes and catalytic activity for amidation of aldehydes with amines

Xu, Bin,Huang, Lingling,Yang, Zijian,Yao, Yingming,Zhang, Yong,Shen, Qi

, p. 3588 - 3595 (2011)

Four heterobimetallic lanthanide-potassium complexes stabilized by the carbon-bridged bis(phenolate) ligand MBMP2- (MBMP = 2,2′-methylene bis(6-tert-butyl-4-methylphenolate)), [{(MBMP) 2La(THF)2}2K][K(THF)6] (1), [(MBMP)Nd(μ-MBMP)K(THF)]2 (2), [(THF)2Sm(MBMP) 2K(THF)2] (3), and [(THF)2Yb(MBMP) 2K(THF)3] (4), were synthesized, and their structural features were provided. It was found that the ionic radii of lanthanide metals have a profound effect on the structures of the heterobimetallic complexes. Complexes 1 to 4 are efficient catalysts for amidation reactions of aldehydes with amines to produce amides in good to excellent yields under mild conditions.

Palladium-Catalyzed Carbonylative Synthesis of Amides from Aryltriazenes under Additive-Free Conditions

Yin, Zhiping,Wang, Zechao,Wu, Xiao-Feng

, p. 3992 - 3995 (2017)

An interesting palladium-catalyzed carbonylative synthesis of amides from aryltriazenes was developed. By using Pd(MeCN2)Cl2 as the catalyst precursor under CO pressure through a N2 extrusion/CO insertion sequence, a broad range of aryltriazenes were transformed into the corresponding amides in good yields with excellent functional group tolerance. Remarkably, no additives such as acids or phosphine ligands were required.

Microwave-enhanced aminocarbonylations in water

Wu, Xiongyu,Larhed, Mats

, p. 3327 - 3329 (2005)

(Chemical Equation Presented) Aryl bromides can be rapidly converted to the corresponding secondary and tertiary benzamides in water. By using Mo(CO) 6 as the source of carbon monoxide, aminocarbonylations were conducted under air after only 10

Microwave-promoted aminocarbonylation of aryl triflates using Mo(CO)6 as a solid CO source

Odell, Luke R.,S?vmarker, Jonas,Larhed, Mats

, p. 6115 - 6118 (2008)

Palladium-catalyzed carbonylations of aryl triflates with a range of nucleophiles using Mo(CO)6 as a solid CO source were explored. The reactions proceeded smoothly providing moderate to good yields of the corresponding aryl amides, esters, or acylsulfonamides after only 20 min of microwave irradiation. The acyl transfer reagent 4-dimethylaminopyridine was found to promote some of the more difficult transformations.

Amide Bond Formation via the Rearrangement of Nitrile Imines Derived from N-2-Nitrophenyl Hydrazonyl Bromides

Boyle, Mhairi,Livingstone, Keith,Henry, Martyn C.,Elwood, Jessica M. L.,Lopez-Fernandez, J. Daniel,Jamieson, Craig

supporting information, p. 334 - 338 (2022/01/20)

We report how the rearrangement of highly reactive nitrile imines derived from N-2-nitrophenyl hydrazonyl bromides can be harnessed for the facile construction of amide bonds. This amidation reaction was found to be widely applicable to the synthesis of primary, secondary, and tertiary amides and was used as the key step in the synthesis of the lipid-lowering agent bezafibrate. The orthogonality and functional group tolerance of this approach was exemplified by the N-acylation of unprotected amino acids.

Direct Synthesis of Enamides via Electrophilic Activation of Amides

Berger, Martin,Kaiser, Daniel,Maulide, Nuno,Spie?, Philipp

supporting information, p. 10524 - 10529 (2021/07/28)

A novel, one-step N-dehydrogenation of amides to enamides is reported. This reaction employs the unlikely combination of LiHMDS and triflic anhydride, which serves as both the electrophilic activator and the oxidant, and is characterized by its simple setup and broad substrate scope. The synthetic utility of the formed enamides was readily demonstrated in a range of downstream transformations.

Visible light-mediated synthesis of amides from carboxylic acids and amine-boranes

Chen, Xuenian,Kang, Jia-Xin,Ma, Yan-Na,Miao, Yu-Qi

supporting information, p. 3595 - 3599 (2021/06/06)

Here, a photocatalytic deoxygenative amidation protocol using readily available amine-boranes and carboxylic acids is described. This approach features mild conditions, moderate-to-good yields, easy scale-up, and up to 62 examples of functionalized amides with diverse substituents. The synthetic robustness of this method was also demonstrated by its application in the late-stage functionalization of several pharmaceutical molecules.

Cobalt-catalyzed aminocarbonylation of (hetero)aryl halides promoted by visible light

Alexanian, Erik J.,Veatch, Alexander M.

, p. 7210 - 7213 (2020/07/23)

The catalytic aminocarbonylation of (hetero)aryl halides is widely applied in the synthesis of amides but relies heavily on the use of precious metal catalysis. Herein, we report an aminocarbonylation of (hetero)aryl halides using a simple cobalt catalyst under visible light irradiation. The reaction extends to the use of (hetero)aryl chlorides and is successful with a broad range of amine nucleophiles. Mechanistic investigations are consistent with a reaction proceeding via intermolecular charge transfer involving a donor-acceptor complex of the substrate and cobaltate catalyst.

Metal-Free C-N or C-C Bond Cleavages of α-Azido Ketones: An Oxidative-Amidation Strategy for the Synthesis of α-Ketothioamides and Amides

Yu, Pei,Wang, Yuwei,Zeng, Zhigang,Chen, Yunfeng

, p. 14883 - 14891 (2019/11/11)

A novel metal-free oxidative-amidation strategy for the synthesis of α-ketothioamides and amides from α-azido ketones was developed. The C-H bond thionation of α-azido ketones with elemental sulfur could form α-ketothioacyl azide, which was then nucleophilically attacked by amines, causing the cleavage of the C-N bond to afford α-ketothioamides, while amides could be formed with the release of nitrogen gas and cyano anion in the presence of PhI(OAc)2 by selective C-C bond cleavage.

Carbon-Carbon Bond Formation of Trifluoroacetyl Amides with Grignard Reagents via C(O)-CF3 Bond Cleavage

Zhu, Longzhi,Le, Liyuan,Yan, Mingpan,Au, Chak-Tong,Qiu, Renhua,Kambe, Nobuaki

, (2019/05/07)

The reaction of trifluoroacetyl amides with Grignard reagent for the substitution of CF3 group with various alkyl or aryl groups is described. A variety of aryl, quinolin-8-yl, and (hetero)alkyl functional groups as well as F, Cl, and Br atoms are well tolerated. These moisture-stable and easily available trifluoroacetyl amides can be conveniently obtained and used as new versatile precursors for isocyanates. The control experiments show that the reaction proceeds via an isocyanate intermediate and/or alkoxide/amide dual anionic intermediate.

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