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Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate is a complex organic chemical compound characterized by a benzene ring with a methyl ester and a trifluoromethyl group. It also features a boron-containing heterocyclic ring, which imparts unique reactivity and properties to the molecule. Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate is widely recognized for its utility as a building block in the realms of organic synthesis and medicinal chemistry, where its distinctive structural attributes can be harnessed to synthesize novel compounds with potential applications in pharmaceuticals and materials science.

1045795-70-7

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1045795-70-7 Usage

Uses

Used in Organic Synthesis:
Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate is used as a synthetic building block for the creation of new organic compounds. Its unique structure and reactivity allow chemists to construct a variety of molecules with potential applications in different fields.
Used in Medicinal Chemistry:
In the pharmaceutical industry, Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate serves as a key intermediate in the synthesis of bioactive molecules. Its incorporation into drug candidates can lead to the development of new therapeutic agents with improved efficacy and selectivity.
Used in Chemical Reactions:
The boron atom in Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate endows the molecule with specific reactivity, making it a valuable tool in various chemical reactions. This reactivity can be leveraged to facilitate the synthesis of complex organic molecules and to explore new reaction pathways in synthetic chemistry.
Used in Research and Development:
Methyl 4-(4,4,5,5-tetraMethyl-1,3,2-dioxaborolan-2-yl)-2-(trifluoroMethyl)benzoate is utilized in research settings to study the properties and reactivity of boron-containing compounds. Its unique structure provides a platform for investigating new chemical concepts and for developing innovative synthetic methodologies.

Check Digit Verification of cas no

The CAS Registry Mumber 1045795-70-7 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,0,4,5,7,9 and 5 respectively; the second part has 2 digits, 7 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 1045795-70:
(9*1)+(8*0)+(7*4)+(6*5)+(5*7)+(4*9)+(3*5)+(2*7)+(1*0)=167
167 % 10 = 7
So 1045795-70-7 is a valid CAS Registry Number.

1045795-70-7Downstream Products

1045795-70-7Relevant academic research and scientific papers

Mechanistic Origins of Regioselectivity in Cobalt-Catalyzed C(sp2)-H Borylation of Benzoate Esters and Arylboronate Esters

Chirik, Paul J.,MacMillan, Kaitlyn T.,Pabst, Tyler P.,Quach, Linda

supporting information, (2021/01/06)

Carbon–hydrogen (C–H) bonds are ubiquitous in organic molecules, and methods for their selective functionalization to more reactive functional groups is a long-standing goal in catalysis, as applied to organic synthesis. Of the established methods involving transition metal catalysts, many employ carefully engineered substrate-catalyst interactions, placing the targeted C–H bond proximal to the metal catalyst, resulting in activation and subsequent functionalization. Here, we report mechanistic investigations describing a conceptual alternative to this approach whereby a cobalt-based borylation catalyst differentiates between subtle electronic differences in C(sp2)-H bonds of benzoate esters and arylboronate esters. These advances motivate studies of catalysts that rely on inherent differences in C–H bond electronics to distinguish chemically inequivalent sites, providing a new tool for organic synthesis. Synthetic and mechanistic investigations into the C(sp2)-H borylation of various electronically diverse arenes catalyzed by bis(phosphine)pyridine (iPrPNP) cobalt complexes are reported. Borylation of various benzoate esters and arylboronate esters gave remarkably high selectivities for the position para to the functional group; in both cases, this regioselectivity was found to override the ortho-to-fluorine regioselectivity, previously reported for (iPrPNP)Co borylation catalysts, which arises from thermodynamic control of C(sp2)-H oxidative addition. Mechanistic studies support pathways that result in para-to-ester and para-to-boronate ester selectivity by kinetic control of B-H and C(sp2-H) oxidative addition, respectively. Borylation of a particularly electron-deficient fluorinated arylboronate ester resulted in acceleration of C(sp2)-H oxidative addition and concomitant inversion of regioselectivity, demonstrating that subtle changes in the relative rates of individual steps of the catalytic cycle can enable unique and switchable site selectivities. Most strategies to selectively activate and functionalize a specific C–H bond in an organic molecule rely upon carefully engineered spatial interactions between a substrate and a transition metal catalyst. Here, we report a conceptually distinct alternative strategy, whereby a cobalt catalyst distinguishes between subtly different C(sp2)-H sites of an arene based on electronics rather than sterics. Mechanistic studies elucidated the origins of substrate-controlled regioselectivity in the C(sp2)-H borylation of benzoate esters and arylboronate esters.

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