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O-(trimethylsilyl) thiobenzoate, also known as trimethylsilyl benzoate, is an organosilicon compound with the chemical formula C10H14OSi. It is a colorless liquid that is soluble in organic solvents and has a molecular weight of 178.31 g/mol. O-(trimethylsilyl) thiobenzoate is primarily used as a protecting group in organic synthesis, particularly in the protection of thiol groups. It is also employed as a reagent in the synthesis of various organic compounds and as a coupling agent in the formation of carbon-sulfur bonds. Due to its stability and reactivity, O-(trimethylsilyl) thiobenzoate plays a significant role in the field of organic chemistry, particularly in the synthesis of pharmaceuticals, agrochemicals, and other specialty chemicals.

7528-43-0

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7528-43-0 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 7528-43-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 7,5,2 and 8 respectively; the second part has 2 digits, 4 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 7528-43:
(6*7)+(5*5)+(4*2)+(3*8)+(2*4)+(1*3)=110
110 % 10 = 0
So 7528-43-0 is a valid CAS Registry Number.

7528-43-0Relevant academic research and scientific papers

Mechanism of thio acid/azide amidation

Kolakowski, Robert V.,Shangguan, Ning,Sauers, Ronald R.,Williams, Lawrence J.

, p. 5695 - 5702 (2006)

A combined experimental and computational mechanistic study of amide formation from thio acids and azides is described. The data support two distinct mechanistic pathways dependent on the electronic character of the azide component. Relatively electron-rich azides undergo bimolecular coupling with thiocarboxylates via an anion-accelerated [3+2] cycloaddition to give a thiatriazoline. Highly electron-poor azides couple via bimolecular union of the terminal nitrogen of the azide with sulfur of the thiocarboxylate to give a linear adduct. Cyclization of this intermediate gives a thiatriazoline. Decomposition to amide is found to proceed via retro-[3+2] cycloaddition of the neutral thiatriazoline intermediates. Computational analysis (DFT, 6-31+G(d)) identified pathways by which both classes of azide undergo [3+2] cycloaddition with thio acid to give thiatriazoline intermediates, although these paths are higher in energy than the thiocarboxylate amidations. These studies also establish that the reaction profile of electron-poor azides is attributable to a prior capture mechanism followed by intramolecular acylation.

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