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Tris(4-bromophenyl)chlorosilane is an organosilicon compound with the chemical formula C18H12Br3ClSi. It is a derivative of chlorosilane, where three bromine atoms are attached to the phenyl rings, and one chlorine atom is bonded to the silicon atom. tris(4-bromophenyl)chlorosilane is characterized by its high reactivity and is used in various applications, such as in the synthesis of silane coupling agents and as a precursor in the production of specialty polymers and materials. Due to its reactivity and potential hazards, it is essential to handle tris(4-bromophenyl)chlorosilane with caution, following proper safety protocols and guidelines.

18557-74-9

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18557-74-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 18557-74-9 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,8,5,5 and 7 respectively; the second part has 2 digits, 7 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 18557-74:
(7*1)+(6*8)+(5*5)+(4*5)+(3*7)+(2*7)+(1*4)=139
139 % 10 = 9
So 18557-74-9 is a valid CAS Registry Number.

18557-74-9Relevant academic research and scientific papers

Linear free-energy relationship and rate study on a silylation-based kinetic resolution: Mechanistic insights

Akhani, Ravish K.,Moore, Maggie I.,Pribyl, Julia G.,Wiskur, Sheryl L.

, p. 2384 - 2396 (2014/04/17)

The substituent effect of different p-substituted triphenylsilyl chlorides on silylation-based kinetic resolutions was explored. Electron-donating groups slow down the reaction rate and improve the selectivity, while electron-withdrawing groups increase the reaction rate and decrease the selectivity. Linear free-energy relationships were found correlating both selectivity factors and initial rates to the σpara Hammett parameters. A weak correlation of selectivity factors to Charton values was also observed when just alkyl substituents were employed but was nonexistent when substituents with more electronic effects were incorporated. The rate data suggest that a significant redistribution of charge occurs in the transition state, with an overall decrease in positive charge. The linear free-energy relationship derived from selectivity factors is best understood by the Hammond postulate. Early and late transition states describe the amount of substrate participation in the transition state and therefore the difference in energy between the diastereomeric transition states of the two enantiomers. This work highlights our efforts toward understanding the mechanism and origin of selectivity in our silylation-based kinetic resolution.

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