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2,6-d2-4-methylbromobenzene is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

54299-27-3

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54299-27-3 Usage

Structure

A benzene ring with a bromine atom at the 2-position, a methyl group at the 4-position, and two deuterium atoms at the 2and 6-positions.

Isotope labeling

Contains two deuterium atoms, which can act as stable isotopic labels and provide unique signals in nuclear magnetic resonance (NMR) spectroscopy studies.

Applications

Often used as a labeling reagent in organic chemistry to track the movement or transformation of molecules. Has various applications in research and industry, particularly in the field of organic synthesis and chemical analysis.

Check Digit Verification of cas no

The CAS Registry Mumber 54299-27-3 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,4,2,9 and 9 respectively; the second part has 2 digits, 2 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 54299-27:
(7*5)+(6*4)+(5*2)+(4*9)+(3*9)+(2*2)+(1*7)=143
143 % 10 = 3
So 54299-27-3 is a valid CAS Registry Number.

54299-27-3Relevant academic research and scientific papers

Gold-catalyzed oxidative coupling of arylsilanes and arenes: Origin of selectivity and improved precatalyst

Ball, Liam T.,Lloyd-Jones, Guy C.,Russell, Christopher A.

, p. 254 - 264 (2014/01/23)

The mechanism of gold-catalyzed coupling of arenes with aryltrimethylsilanes has been investigated, employing an improved precatalyst (thtAuBr3) to facilitate kinetic analysis. In combination with linear free-energy relationships, kinetic isotope effects, and stoichiometric experiments, the data support a mechanism involving an Au(I)/Au(III) redox cycle in which sequential electrophilic aromatic substitution of the arylsilane and the arene by Au(III) precedes product-forming reductive elimination and subsequent cycle-closing reoxidation of the metal. Despite the fundamental mechanistic similarities between the two auration events, high selectivity is observed for heterocoupling (C-Si then C-H auration) over homocoupling of either the arylsilane or the arene (C-Si then C-Si, or C-H then C-H auration); this chemoselectivity originates from differences in the product-determining elementary steps of each electrophilic substitution. The turnover-limiting step of the reaction involves associative substitution en route to an arene π-complex. The ramifications of this insight for implementation of the methodology are discussed.

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