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Cp*Ir(PMe3)(CHFCF2CF3)Cl is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

869796-57-6

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869796-57-6 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 869796-57-6 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 8,6,9,7,9 and 6 respectively; the second part has 2 digits, 5 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 869796-57:
(8*8)+(7*6)+(6*9)+(5*7)+(4*9)+(3*6)+(2*5)+(1*7)=266
266 % 10 = 6
So 869796-57-6 is a valid CAS Registry Number.

869796-57-6Downstream Products

869796-57-6Relevant academic research and scientific papers

Carbon-fluorine bond activation coupled with carbon-hydrogen bond formation α to iridium: Kinetics, mechanism, and diastereoselectivity

Garratt, Shaun A.,Hughes, Russell P.,Kovacik, Ivan,Ward, Antony J.,Willemsen, Stefan,Zhang, Donghui

, p. 15585 - 15594 (2007/10/03)

Reactions of iridium(fluoroalkyl)hydride complexes Cp*Ir(PMe 3)(CF2RF)Y (RF = F, CF3; Y = H, D) with LutHX (Lut = 2,6-dimethylpyridine; X = Cl, I) results in C-F activation coupled with hydride migration to give Cp*Ir(PMe 3)(CYFRF)X as variable mixtures of diastereomers. Solution conformations and relative diastereomer configurations of the products have been determined by 19F{1H}HOESY NMR to be (SC, SIr)(RC, RIr) for the kinetic diastereomer and (RC, SIr)(SC, RIr) for its thermodynamic counterpart. Isotope labeling experiments using LutDCl/Cp*Ir(PMe3)(CF2RF)H and Cp*Ir(PMe3)(CF2RF)D/LutHCl) showed that, unlike a previously studied system, H/D exchange is faster than protonation of the α-CF bond, giving an identical mixture of product isotopologues from both reaction mixtures. The kinetic rate law shows a first-order dependence on the concentration of iridium substrate, but a half-order dependence on that of LutHCl; this is interpreted to mean that LutHCl dissociates to give HCl as the active protic source for C-F bond activation. Detailed kinetic studies are reported, which demonstrate that lack of complete diastereoselectivity is not a function of the C-F bond activation/H migration steps but that a cationic intermediate plays a double role in loss of diastereoselectivity; the intermediate can undergo epimerization at iridium before being trapped by halide and can also catalyze the epimerization of kinetic diastereomer product to thermodynamic product. A detailed mechanism is proposed and simulations performed to fit the kinetic data.

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