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698-67-9

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698-67-9 Usage

Description

4-BROMOBENZAMIDE is a white fine crystalline powder that has been investigated for its electrochemical fluorination properties in anhydrous HF. It is a chemical compound with potential applications in various industries due to its unique properties.

Uses

Used in Pharmaceutical Industry:
4-BROMOBENZAMIDE is used as an intermediate compound for the preparation of (N-benzylpiperidin-4-yl)-4-tri-n-butylstannylbenzamide, which may have potential applications in the development of new pharmaceuticals.
Used in Chemical Research:
4-BROMOBENZAMIDE is used as a subject of study in electrochemical fluorination, particularly when investigating its properties in anhydrous HF. This research can contribute to the understanding of the compound's behavior and potential applications in various chemical processes.

Check Digit Verification of cas no

The CAS Registry Mumber 698-67-9 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 6,9 and 8 respectively; the second part has 2 digits, 6 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 698-67:
(5*6)+(4*9)+(3*8)+(2*6)+(1*7)=109
109 % 10 = 9
So 698-67-9 is a valid CAS Registry Number.
InChI:InChI=1/C7H6BrNO/c8-6-3-1-5(2-4-6)7(9)10/h1-4H,(H2,9,10)

698-67-9 Well-known Company Product Price

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  • Alfa Aesar

  • (B24348)  4-Bromobenzamide, 97%   

  • 698-67-9

  • 2g

  • 367.0CNY

  • Detail
  • Alfa Aesar

  • (B24348)  4-Bromobenzamide, 97%   

  • 698-67-9

  • 10g

  • 704.0CNY

  • Detail
  • Alfa Aesar

  • (B24348)  4-Bromobenzamide, 97%   

  • 698-67-9

  • 50g

  • 2374.0CNY

  • Detail

698-67-9SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 14, 2017

Revision Date: Aug 14, 2017

1.Identification

1.1 GHS Product identifier

Product name 4-Bromobenzamide

1.2 Other means of identification

Product number -
Other names 4-BROMOBENZAMIDE

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:698-67-9 SDS

698-67-9Relevant articles and documents

Nitrogen Atom Transfer Catalysis by Metallonitrene C?H Insertion: Photocatalytic Amidation of Aldehydes

Schmidt-R?ntsch, Till,Verplancke, Hendrik,Lienert, Jonas N.,Demeshko, Serhiy,Otte, Matthias,Van Trieste, Gerard P.,Reid, Kaleb A.,Reibenspies, Joseph H.,Powers, David C.,Holthausen, Max C.,Schneider, Sven

, (2022/01/20)

C?H amination and amidation by catalytic nitrene transfer are well-established and typically proceed via electrophilic attack of nitrenoid intermediates. In contrast, the insertion of (formal) terminal nitride ligands into C?H bonds is much less developed and catalytic nitrogen atom transfer remains unknown. We here report the synthesis of a formal terminal nitride complex of palladium. Photocrystallographic, magnetic, and computational characterization support the assignment as an authentic metallonitrene (Pd?N) with a diradical nitrogen ligand that is singly bonded to PdII. Despite the subvalent nitrene character, selective C?H insertion with aldehydes follows nucleophilic selectivity. Transamidation of the benzamide product is enabled by reaction with N3SiMe3. Based on these results, a photocatalytic protocol for aldehyde C?H trimethylsilylamidation was developed that exhibits inverted, nucleophilic selectivity as compared to typical nitrene transfer catalysis. This first example of catalytic C?H nitrogen atom transfer offers facile access to primary amides after deprotection.

Aerobic oxidation of primary amines to amides catalyzed by an annulated mesoionic carbene (MIC) stabilized Ru complex

Yadav, Suman,Reshi, Noor U Din,Pal, Saikat,Bera, Jitendra K.

, p. 7018 - 7028 (2021/11/17)

Catalytic aerobic oxidation of primary amines to the amides, using the precatalyst [Ru(COD)(L1)Br2] (1) bearing an annulated π-conjugated imidazo[1,2-a][1,8]naphthyridine-based mesoionic carbene ligand L1, is disclosed. This catalytic protocol is distinguished by its high activity and selectivity, wide substrate scope and modest reaction conditions. A variety of primary amines, RCH2NH2 (R = aliphatic, aromatic and heteroaromatic), are converted to the corresponding amides using ambient air as an oxidant in the presence of a sub-stoichiometric amount of KOtBu in tBuOH. A set of control experiments, Hammett relationships, kinetic studies and DFT calculations are undertaken to divulge mechanistic details of the amine oxidation using 1. The catalytic reaction involves abstraction of two amine protons and two benzylic hydrogen atoms of the metal-bound primary amine by the oxo and hydroxo ligands, respectively. A β-hydride transfer step for the benzylic C-H bond cleavage is not supported by Hammett studies. The nitrile generated by the catalytic oxidation undergoes hydration to afford the amide as the final product. This journal is

Product selectivity controlled by manganese oxide crystals in catalytic ammoxidation

Hui, Yu,Luo, Qingsong,Qin, Yucai,Song, Lijuan,Wang, Hai,Wang, Liang,Xiao, Feng-Shou

, p. 2164 - 2172 (2021/09/20)

The performances of heterogeneous catalysts can be effectively tuned by changing the catalyst structures. Here we report a controllable nitrile synthesis from alcohol ammoxidation, where the nitrile hydration side reaction could be efficiently prevented by changing the manganese oxide catalysts. α-Mn2O3 based catalysts are highly selective for nitrile synthesis, but MnO2-based catalysts including α, β, γ, and δ phases favour the amide production from tandem ammoxidation and hydration steps. Multiple structural, kinetic, and spectroscopic investigations reveal that water decomposition is hindered on α-Mn2O3, thus to switch off the nitrile hydration. In addition, the selectivity-control feature of manganese oxide catalysts is mainly related to their crystalline nature rather than oxide morphology, although the morphological issue is usually regarded as a crucial factor in many reactions.

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