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Trifluoromethylaminobenzene, also known as 4-(trifluoromethyl)aniline or 4-CF3C6H4NH2, is an organic compound that consists of a benzene ring with a trifluoromethyl group (CF3) attached to the para position (the fourth carbon) and an amino group (NH2) attached to the ortho position (the second carbon). This molecule is a valuable intermediate in the synthesis of various pharmaceuticals, agrochemicals, and other specialty chemicals due to its unique combination of electron-withdrawing and electron-donating properties. The trifluoromethyl group enhances the molecule's lipophilicity and metabolic stability, while the amino group provides opportunities for further functionalization and reactivity. Trifluoromethylaminobenzene is typically synthesized through various methods, such as the nucleophilic aromatic substitution of chlorobenzene with trifluoromethylamine or the reduction of 4-nitrobenzotrifluoride. Its applications span across various industries, including the development of new drugs, agrochemicals, and materials with improved properties.

2070-47-5

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2070-47-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 2070-47-5 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 2,0,7 and 0 respectively; the second part has 2 digits, 4 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 2070-47:
(6*2)+(5*0)+(4*7)+(3*0)+(2*4)+(1*7)=55
55 % 10 = 5
So 2070-47-5 is a valid CAS Registry Number.

2070-47-5Downstream Products

2070-47-5Relevant academic research and scientific papers

CF3 oxonium salts, O-(trifluoromethyl)dibenzofuranium salts: In situ synthesis, properties, and application as a real CF3+ species reagent

Umemoto, Teruo,Adachi, Kenji,Ishihara, Sumi

, p. 6905 - 6917 (2007)

(Chemical Equation Presented) We report in situ synthesis of the first CF3 oxonium salts, thermally unstable O-(trifluoromethyl)- dibenzofuranium salts, which furthermore have different counteranions (BF 4-, PF6-, SbF6 -, and Sb2F11-) and ring substituents (tert-butyl, F, and OCH3), by photochemical decomposition of the corresponding 2-(trifluoromethoxy)biphenylyl-2′- diazonium salts at -90 to -100°C. The yields markedly increased in the order of BF4- 6- 6- 2F11-. The CF3 oxonium salts were fully assigned by means of 1H and 19F NMR spectroscopy at low temperature. The CF3 salts decomposed to form CF4 and dibenzofurans. The half-life times at -60°C of the 2-tert-butyl salts having different counteranions were 29 min for BF4- salt 2d, 36 min for PF6- salt 2c, 270 min for SbF6- salt 2a, and 415 min for Sb2F11- salt 2b. Those at -60°C of the Sb2F11- salts having different 2-substituents were 13 min for F salt 3b, 63 min for H (unsubstituted) salt 1b, and 415 min for tert-butyl salt 2b. Thus, the stability of the CF3 oxonium salts increased in the order of BF4- 6 - 6- 2F 11- and F 3+ species source to the direct O- and N-trifluoromethylations of alcohols, phenols, amines, anilines, and pyridines under very mild conditions. The thermal decomposition method with a mixture of diazonium salt 17a and aryl- or alkylsulfonic acids, pyridine, or pyridines having an electron-withdrawing group also afforded CF3O or CF 3N products. The trifluoromethylation mechanism is discussed and an SN2 mechanism containing the transient formation of free CF 3+ is proposed. Thus, the present study has demonstrated that the exceedingly reactive CF3+ species can be generated much easier than the CH3+ species, contrary to the common sense that CF3+ is extremely difficult to generate in solution.

N-Trifluoromethylation of Nitrosoarenes with Sodium Triflinate

Van der Werf, Angela,Hribersek, Matic,Selander, Nicklas

, p. 2374 - 2377 (2017)

A highly efficient N-trifluoromethylation of nitrosoarenes is reported. The inexpensive and convenient Langlois reagent (sodium triflinate) is employed as a CF3-radical source in combination with a copper catalyst and an oxidant. N-Trifluoromethylated hydroxylamines are obtained in high yields within 1 h at room temperature. The addition of hydroquinone was found to be instrumental to prevent the formation of side products. The method is high-yielding, is scalable, and displays a high functional group tolerance.

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