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Benzeneacetic acid, α-fluoro-α-phenyl-, methyl ester, also known as α-fluorophenylacetic acid methyl ester, is an organic compound with the chemical formula C15H13FO2. It is a colorless to pale yellow crystalline solid that is soluble in organic solvents. Benzeneacetic acid, a-fluoro-a-phenyl-, methyl ester is a derivative of benzeneacetic acid, featuring a fluorine atom attached to the phenyl ring and a methyl ester group. It is synthesized by esterification of α-fluorophenylacetic acid with methanol. The compound has potential applications in the pharmaceutical industry, particularly in the synthesis of various drugs and intermediates, due to its unique structure and reactivity. It is important to handle Benzeneacetic acid, a-fluoro-a-phenyl-, methyl ester with care, as it may have potential health risks and should be stored in a cool, dry place away from direct sunlight.

309-44-4

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309-44-4 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 309-44-4 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 3,0 and 9 respectively; the second part has 2 digits, 4 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 309-44:
(5*3)+(4*0)+(3*9)+(2*4)+(1*4)=54
54 % 10 = 4
So 309-44-4 is a valid CAS Registry Number.

309-44-4Downstream Products

309-44-4Relevant academic research and scientific papers

Visible-light photoredox-catalyzed selective carboxylation of C(sp3)?F bonds with CO2

Bo, Zhi-Yu,Chen, Lin,Gao, Tian-Yu,Jing, Ke,Lan, Yu,Liu, Shi-Han,Luo, Shu-Ping,Yan, Si-Shun,Yu, Bo,Yu, Da-Gang

supporting information, p. 3099 - 3113 (2021/11/16)

It is highly attractive and challenging to utilize carbon dioxide (CO2), because of its inertness, as a nontoxic and sustainable C1 source in the synthesis of valuable compounds. Here, we report a novel selective carboxylation of C(sp3)?F bonds with CO2 via visible-light photoredox catalysis. A variety of mono-, di-, and trifluoroalkylarenes as well as α,α-difluorocarboxylic esters and amides undergo such reactions to give important aryl acetic acids and α-fluorocarboxylic acids, including several drugs and analogs, under mild conditions. Notably, mechanistic studies and DFT calculations demonstrate the dual role of CO2 as an electron carrier and electrophile during this transformation. The fluorinated substrates would undergo single-electron reduction by electron-rich CO2 radical anions, which are generated in situ from CO2 via sequential hydride-transfer reduction and hydrogen-atom-transfer processes. We anticipate our finding to be a starting point for more challenging CO2 utilization with inert substrates, including lignin and other biomass.

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