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104462-82-0

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104462-82-0 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 104462-82-0 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,0,4,4,6 and 2 respectively; the second part has 2 digits, 8 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 104462-82:
(8*1)+(7*0)+(6*4)+(5*4)+(4*6)+(3*2)+(2*8)+(1*2)=100
100 % 10 = 0
So 104462-82-0 is a valid CAS Registry Number.

104462-82-0SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 18, 2017

Revision Date: Aug 18, 2017

1.Identification

1.1 GHS Product identifier

Product name 2-cyclohexyl-1,3-benzoxazole

1.2 Other means of identification

Product number -
Other names 2-cyclohexyl-benzoxazole

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:104462-82-0 SDS

104462-82-0Relevant academic research and scientific papers

Cesium Fluoride and Copper-Catalyzed One-Pot Synthesis of Benzoxazoles via a Site-Selective Amide C?N Bond Cleavage

Luo, Zhongfeng,Wu, Hongxiang,Li, Yue,Chen, Yuwen,Nie, Jingyi,Lu, Siqi,Zhu, Yulin,Zeng, Zhuo

, p. 4117 - 4125 (2019)

We report herein a two-step one-pot strategy for the synthesis of benzoxazoles from amides by using cesium fluoride/copper as catalysts. This approach involves the in situ generation of acyl fluorides from the corresponding amides, and the acyl fluorides undergo transamidation and cyclization to give benzoxazoles in good yields. In this work, the amide C?N bonds are activated by CsF to form the acyl fluoride intermediates, which further react with o-bromoanilines to efficiently yield benzoxazoles. Notably, this methodology demonstrates a broad substrate scope, as primary/secondary benzamides are well tolerated, and this process might facilitate the development of one-pot transformations of amides. (Figure presented.).

Synthesis of benzoxazoles via intramolecular cyclization of ortho-halobenzanilides using copper fluorapatite catalyst

Lakshmi Kantam,Venkanna,Shiva Kumar,Balasubrahmanyam,Bhargava, Suresh

, p. 1753 - 1756 (2009)

An efficient method for the synthesis of benzoxazoles via intramolecular cyclization of ortho-haloanilides using heterogeneous copper fluorapatite catalyst is described. A variety of orthohaloanilides (iodo-, bromo- and chloroanilides) were cyclized to the corresponding benzoxazoles, demonstrating the versatility of the reaction. Georg Thieme Verlag Stuttgart.

Iodoalkyne-Based Catalyst-Mediated Activation of Thioamides through Halogen Bonding

Matsuzawa, Akinobu,Takeuchi, Shiho,Sugita, Kazuyuki

, p. 2863 - 2866 (2016)

Halogen bonding catalysis has recently gained increasing attention as a powerful tool to activate organic molecules. However, the variety of the catalyst structure has been quite limited so far. Herein, we report the first example of the use of an iodoalkyne as a halogen bond donor catalyst. By using an iodoalkyne bearing a pentafluorophenyl group as a catalyst, thioamides were efficiently activated and reacted with 2-aminophenol to generate benzoxazoles in good yield. Mechanistic studies, including 13C NMR spectroscopic analysis and several control experiments, provided concrete evidence that this catalytic activation is based on halogen bonding. Thus, the results obtained in this study demonstrate that iodoalkynes can serve as a new scaffold for future development of halogen bonding catalysis.

Direct construction of 2-alkylbenzo-1,3-azoles via C-H activation of alkanes for C-C and C-X (X = O, S) bond formation

Yadav, Arvind K.,Yadav, Lal Dhar S.

, p. 2606 - 2611 (2015)

Copper catalyzed straightforward synthesis of 2-alkylbenzoxa(thia)azoles from aryl isocyanates/isothiocyanates and simple alkanes is reported. The protocol utilizes ditertiary butyl peroxide (DTBP) as a radical initiator and involves sequential formation of C-C and C-X (X = O, S) bonds followed by aromatization in a one-pot procedure. This journal is

Direct alkylation of heteroarenes with unactivated bromoalkanes using photoredox gold catalysis

McCallum,Barriault

, p. 4754 - 4758 (2016)

Although visible light photoredox catalysis has emerged as a powerful tool for the construction of C-C bonds, common catalysts and/or their photoexcited states suffer from low redox potentials, limiting their applicability to alkyl radical generation from substrates with activated carbon-halogen bonds. Radicals derived from these activated compounds, being highly electrophilic or stabilized, do not undergo efficient addition to heteroarenes. Herein we describe the photocatalytic generation of nucleophilic alkyl radicals from unactivated bromoalkanes as part of a universal and efficient cross-coupling strategy for the direct alkylation of heteroarenes using a dimeric gold(i) photoredox catalyst, [Au2(bis(diphenylphosphino)methane)2]Cl2. The method proves to be efficient for alkylation of arenes under mild conditions in the absence of directing groups.

Cross-Dehydrogenative Coupling of Strong C(sp3)-H with N-Heteroarenes through Visible-Light-Induced Energy Transfer

An, Guanghui,Li, Guangming,Tian, Chao,Tian, Haitao,Yang, Hui

, p. 7709 - 7715 (2020)

The sustainable cross-dehydrogenative coupling of strong C(sp3)-H with N-heteroarenes has been developed using an efficient organic photocatalyst. It features atomic- and step-economy, and acid-free conditions. Mechanism studies suggest a previous elusive

One-pot green synthesis of benzoxazole derivatives through molecular sieve-catalyzed oxidative cyclization reaction

Chang, Weichieh,Sun, Yukai,Huang, Yungtzung

, (2017)

An one-pot approach to benzoxazole ring from 2-aminophenol and aldehydes utilizing molecular sieve as the catalyst have been developed. The new oxidative cyclization reaction excluded the usage of hazardous chemical reagents, transition-metal catalysts, chemical oxidants, or strong acids, and, therefore, reduced the production of toxic chemical waste. This offers an environmentally friendly pathway for the synthesis of various benzoxazole derivatives.

Straightforward synthesis of benzoxazoles and benzothiazoles via photocatalytic radical cyclization of 2-substituted anilines with aldehydes

Le, Hao Anh Nguyen,Nguyen, Long Hoang,Nguyen, Quynh Nhu Ba,Nguyen, Hai Truong,Nguyen, Khang Quoc,Tran, Phuong Hoang

, (2020/08/03)

Eosin Y-catalyzed one-pot coupling and cyclization of o-substituted anilines with aldehydes to form benzoxazoles and benzothiazoles under mild condition has been developed. The reaction scope was broadly tolerant of various 2-substituted anilines and aldehydes. The desired products were obtained in high yields with the use of eosin Y as a photocatalyst under a substantial refinement of reaction conditions in comparison with previous literature. Based on the experimental results observed, a plausible mechanism involving a radical process has been proposed.

Sulfur-Promoted Synthesis of Benzoxazoles from 2-Aminophenols and Aldehydes

Nguyen, Le Anh,Dang, Thai Duy,Ngo, Quoc Anh,Nguyen, Thanh Binh

supporting information, p. 3818 - 3821 (2020/06/10)

Elemental sulfur (S8) was found to be an excellent stoichiometric oxidant to promote oxidative condensation of 2-aminophenols with a wide range of aldehydes, including aliphatic aldehyde such as cyclohexanecarboxaldehyde. The reactions were catalyzed by sodium sulfide in the presence of DMSO as an additive. The benzoxazole products were obtained in satisfactory yields. The reaction conditions could be applied to larger syntheses (10–50 mmol).

Method of preparing benzoxazole compound

-

Paragraph 0088-0090; 0108, (2020/04/17)

The invention relates to a method of preparing a benzoxazole compound. According to the method, 2-aminophenol, olefin and carbon monoxide are used as reaction substrates, an organic solvent is used asa solvent, and the benzoxazole compound is prepared under the catalytic action of ruthenium-loaded metal oxide. The reaction process is as follows: adding an organic solvent, 2-aminophenol, olefin and a catalyst into a pressure vessel, introducing carbon monoxide, sealing, stirring, reacting at the temperature of not lower than 120 DEG C for not less than 0.5 hour, easily separating the catalystfrom the reaction system after the reaction, and recycling for many times, thereby obtaining the benzoxazole compound with the highest yield of 100%.

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