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(2-FLUORO-PHENYL)-OXO-ACETIC ACID, a member of the fluoroarenes class, is an organic compound characterized by the presence of an aromatic ring with at least one carbon atom substituted by a fluorine atom. This particular compound features a phenyl group with a fluorine substitution and an oxoacetic acid group. Although its specific applications are not widely documented, it may be utilized in various chemical reactions due to the reactivity of the fluorine atoms. Due to the lack of comprehensive safety and toxicity information, caution is advised when handling (2-FLUORO-PHENYL)-OXO-ACETIC ACID.

79477-86-4

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79477-86-4 Usage

Uses

Used in Chemical Reactions:
(2-FLUORO-PHENYL)-OXO-ACETIC ACID is used as a chemical intermediate for [various chemical reactions] due to [the reactivity of the fluorine atoms].
Used in Research and Development:
(2-FLUORO-PHENYL)-OXO-ACETIC ACID is used as a research compound for [exploring its properties and potential applications] in the field of organic chemistry.
Used in Pharmaceutical Industry:
(2-FLUORO-PHENYL)-OXO-ACETIC ACID is used as a building block for [the synthesis of pharmaceutical compounds], taking advantage of the unique characteristics of fluorine substitution.
Used in Material Science:
(2-FLUORO-PHENYL)-OXO-ACETIC ACID is used as a component in [the development of new materials], such as polymers or coatings, that may benefit from the properties conferred by fluorine substitution.

Check Digit Verification of cas no

The CAS Registry Mumber 79477-86-4 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 7,9,4,7 and 7 respectively; the second part has 2 digits, 8 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 79477-86:
(7*7)+(6*9)+(5*4)+(4*7)+(3*7)+(2*8)+(1*6)=194
194 % 10 = 4
So 79477-86-4 is a valid CAS Registry Number.
InChI:InChI=1/C8H5FO3/c9-6-4-2-1-3-5(6)7(10)8(11)12/h1-4H,(H,11,12)

79477-86-4SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name 2-(2-fluorophenyl)-2-oxoacetic acid

1.2 Other means of identification

Product number -
Other names (2-Fluorophenyl)-oxoacetic acid

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:79477-86-4 SDS

79477-86-4Relevant articles and documents

Hypervalent Iodine(III)-Promoted Radical Oxidative C-H Annulation of Arylamines with α-Keto Acids

Long, Lipeng,Wang, Jieyan,Gu, Liuqing,Yang, Shiguang,Qiao, Liang,Luo, Guotian,Chen, Zhengwang

supporting information, p. 12084 - 12092 (2021/08/24)

A novel catalyst-free radical oxidative C-H annulation reaction of arylamines with α-keto acids toward benzoxazin-2-ones synthesis under mild conditions was developed. This hypervalent iodine(III)-promoted process eliminated the use of a metal catalyst or additive with high levels of functional group tolerance. Hypervalent iodine(III) was both an oxidant and a radical initiator for this reaction. The synthetic utility of this method was confirmed by the synthesis of the natural product cephalandole A.

Sex hormone releasing hormone receptor antagonists and uses thereof

-

Paragraph 0053-0056, (2021/10/27)

Gonadotropin-releasing hormone receptor antagonists and uses thereofThe invention relates to the field of organic chemistry, in particular to a compound or a pharmaceutically acceptable salt thereof. Isomer, prodrug, polymorph or solvate as well as prepar

Direct 1,2-Dicarbonylation of Alkenes towards 1,4-Diketones via Photocatalysis

Chen, Bin,Cheng, Yuan-Yuan,Hou, Hong-Yu,Lei, Tao,Tung, Chen-Ho,Wu, Li-Zhu,Yu, Ji-Xin

supporting information, p. 26822 - 26828 (2021/11/17)

1,4-Dicarbonyl compounds are intriguing motifs and versatile precursors in numerous pharmaceutical molecules and bioactive natural compounds. Direct incorporation of two carbonyl groups into a double bond at both ends is straightforward, but also challenging. Represented herein is the first example of 1,2-dicarbonylation of alkenes by photocatalysis. Key to success is that N(n-Bu)4+ not only associates with the alkyl anion to avoid protonation, but also activates the α-keto acid to undergo electrophilic addition. The α-keto acid is employed both for acyl generation and electrophilic addition. By tuning the reductive and electrophilic ability of the acyl precursor, unsymmetric 1,4-dicarbonylation is achieved for the first time. This metal-free, redox-neutral and regioselective 1,2-dicarbonylation of alkenes is executed by a photocatalyst for versatile substrates under extremely mild conditions and shows great potential in biomolecular and drug molecular derivatization.

Diazotrifluoroethyl Radical: A CF3-Containing Building Block in [3 + 2] Cycloaddition

Zhao, Wen-Wen,Shao, Yong-Chao,Wang, An-Ni,Huang, Jia-Li,He, Chun-Yang,Cui, Bao-Dong,Wan, Nan-Wei,Chen, Yong-Zheng,Han, Wen-Yong

supporting information, p. 9256 - 9261 (2021/12/06)

We present herein a visible-light-induced [3 + 2] cycloaddition of a hypervalent iodine(III) reagent with α-ketoacids for the construction of 5-CF3-1,3,4-oxadiazoles that are of importance in medicinal chemistry. The reaction proceeds smoothly without a photocatalyst, metal, or additive under mild conditions. Different from the well-established trifluorodiazoethane (CF3CHN2), the diazotrifluoroethyl radical [CF3C(·)N2], a trifluoroethylcarbyne (CF3C?:) equivalent and an unusual CF3-containing building block, is involved in the present reaction system.

Minisci aroylation of N-heterocycles using choline persulfate in water under mild conditions

Hunjan, Mandeep Kaur,Laha, Joydev K.,Tinwala, Ummehani

, p. 22853 - 22859 (2021/12/24)

Metal persulfate mediated thermal oxidative organic transformations invariably require a higher temperature and frequently use an organic solvent. The objective of this work was to develop persulfate mediated oxidative transformations that can be performed nearly at room temperature using water as a solvent. This report describes modified Minisci aroylation of isoquinolines with arylglyoxylic acids using choline persulfate and its pre-composition (choline acetate and K2S2O8) in water at 40 °C. A few other nitrogen heterocycles were also utilized affording various aroylated products in good to excellent yields. Unlike metal persulfate that could produce metal salt byproducts, a key feature of the chemistry reported herein includes the use of environmentally benign choline persulfate containing biodegradable choline as a counter-cation, the Minisci reaction demonstrated at 40 °C in water as the only solvent, and unconventional activation of persulfate. This journal is

Synthesis of Unprotected 2-Arylglycines by Transamination of Arylglyoxylic Acids with 2-(2-Chlorophenyl)glycine

Inada, Haruki,Shibuya, Masatoshi,Yamamoto, Yoshihiko

, p. 11047 - 11059 (2020/10/12)

The transamination of α-keto acids with 2-phenylglycine is an effective methodology for directly synthesizing unprotected α-amino acids. However, the synthesis of 2-arylglycines by transamination is problematic because the corresponding products, 2-arylglycines, transaminate the starting arylglyoxylic acids. Herein, we demonstrate the use of commercially available l-2-(2-chlorophenyl)glycine as the nitrogen source in the transamination of arylglyoxylic acids, producing the corresponding 2-arylglycines without interference from the undesired self-transamination process.

Novel synthesis method of benzene ring polysubstituted compound based on benzoyl formic acid

-

Paragraph 0034-0040, (2020/05/30)

The invention relates to a novel synthesis method of a benzene ring polysubstituted compound based on benzoyl formic acid. According to the synthesis method, an acetophenone-based benzene ring polysubstituted compound is used as a raw material, a specific

1D Fe3O4&at;CuSiO3 composites catalyzed decarboxylative A3-coupling for propargylamine synthesis

Cao, Tiantian,Feng, Huangdi,Li, Huiqiong,Miao, Teng,Wang, Fang,Zhang, Min

supporting information, p. 1558 - 1563 (2020/07/30)

Highly active and stable magnetic copper catalysts were successfully achieved by magnetic induced St?ber method and subsequent hydrothermal reaction with copper ions in alkaline condition. The high content of Cu2+ as well as the unique structures of hierarchical copper silicate in the as-prepared catalysts endowed their outstanding catalytic performance. Efficient decarboxylative A3-coupling of α-keto acid, amine and alkyne was realized with the low Fe3O4&at;CuSiO3 loading. A range of propargylamines were produced in good to excellent yields under solvent-free condition. Moreover, the catalyst can be easily separated from the final organic product with an external magnet. Also, this kind of catalyst could be recycled up to six times while maintaining its activity.

Photoredox Catalysis Enables Decarboxylative Cyclization with Hypervalent Iodine(III) Reagents: Access to 2,5-Disubstituted 1,3,4-Oxadiazoles

Li, Jian,Lu, Xue-Chen,Xu, Yue,Wen, Jin-Xia,Hou, Guo-Quan,Liu, Li

supporting information, p. 9621 - 9626 (2020/12/21)

A novel approach to 2,5-disubstituted 1,3,4-oxadiazoles derivatives via a decarboxylative cyclization reaction by photoredox catalysis between commercially available α-oxocarboxylic acids and hypervalent iodine(III) reagent is described. This powerful transformation involves the coupling reaction between two different kinds of radical species and the formation of C-N and C-O bonds.

Aroylation of Electron-Rich Pyrroles under Minisci Reaction Conditions

Laha, Joydev K.,Kaur Hunjan, Mandeep,Hegde, Shalakha,Gupta, Anjali

supporting information, p. 1442 - 1447 (2020/02/22)

The development of Minisci acylation on electron-rich pyrroles under silver-free neutral conditions has been reported featuring the regioselective monoacylation of (NH)-free pyrroles. Unlike conventional Minisci conditions, the avoidance of any acid that could result in the polymerization of pyrroles was the key to success. The umpolung reactivity of the nucleophilic acyl radical, generated in situ from arylglyoxylic acid, could help explain the mechanism of product formation with electron-rich pyrroles. Alternatively, the nucleophilic substitution of the acyl radical on the electron-deficient pyrrole radical cation is proposed.

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