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2-Bromo-2-fluoro-1-phenyl-ethanol is an organic compound with the molecular formula C8H7BrFO. It is a derivative of ethanol, featuring a phenyl group (C6H5) attached to the second carbon atom, a bromine atom (Br) at the same position, and a fluorine atom (F) at the adjacent carbon atom. 2-bromo-2-fluoro-1-phenyl-ethanol is characterized by its unique combination of functional groups, which include a hydroxyl group (-OH), a bromine atom, and a fluorine atom. It is a colorless liquid with a distinct aromatic odor and is soluble in organic solvents. Due to its reactive nature, it is often used in the synthesis of various pharmaceuticals, agrochemicals, and other specialty chemicals. The compound's properties, such as its reactivity and solubility, make it a valuable intermediate in organic chemistry, particularly in the preparation of complex molecules that require the introduction of halogenated functional groups.

321-74-4

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321-74-4 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 321-74-4 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 3,2 and 1 respectively; the second part has 2 digits, 7 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 321-74:
(5*3)+(4*2)+(3*1)+(2*7)+(1*4)=44
44 % 10 = 4
So 321-74-4 is a valid CAS Registry Number.

321-74-4Upstream product

321-74-4Relevant academic research and scientific papers

Palladium-catalyzed intermolecular fluoroesterification of styrenes: Exploration and mechanistic insight

Peng, Haihui,Yuan, Zheliang,Wang, Hao-Yang,Guo, Yin-Long,Liu, Guosheng

, p. 3172 - 3178 (2013/07/26)

A novel palladium-catalyzed intermolecular oxidative fluoroesterification of vinylarenes has been developed using NFSI, one of the mildest electrophilic fluorinating reagents. The reaction presents an efficient synthetic pathway to afford a series of α-monofluoromethylbenzyl carboxylates in good to excellent yields. Rather than following an electrophilic fluorination pathway, the reaction is initiated through oxidation of Pd(0) to a Pd(ii) fluoride complex by NFSI, followed by fluoropalladation of a styrene to generate an α-monofluoromethylbenzyl-Pd intermediate. Generally, reductive elimination of benzyl-PdII complexes is favored with relatively strong oxy-nucleophiles to afford C-O bonds. This reaction, however, exhibited the opposite reactivity: strong acids with weak nucleophilicity, such as CF 3CO2H and CCl3CO2H, were prone to afford the fluoroesterification product, while weak acids with strong nucleophilicity, such as HOAc and BzOH, did not deliver the C-O bond product. Further mechanistic studies determined that Csp3-Pd(O2CR), a key intermediate, was generated through ionic ligand exchange between benzyl-Pd(NZ2) and CF3CO2H, and the final C-O bond was possibly formed through reductive elimination of a high-valent Csp 3-Pd(O2CR) complex via an SN2-type nucleophilic attack pathway.

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