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hexakis(2,6-diisopropylphenylisocyanide)chromium(I) tetrafluoroborate is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

129239-15-2

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129239-15-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 129239-15-2 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,2,9,2,3 and 9 respectively; the second part has 2 digits, 1 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 129239-15:
(8*1)+(7*2)+(6*9)+(5*2)+(4*3)+(3*9)+(2*1)+(1*5)=132
132 % 10 = 2
So 129239-15-2 is a valid CAS Registry Number.

129239-15-2Downstream Products

129239-15-2Relevant academic research and scientific papers

Solvent dependence of the electron self-exchange of hexakis(2,6-diisopropylphenyl isocyanide)chromium(0,I) and -chromium(I,II) and a comparison with theoretical models

Anderson, Kim A.,Wherland, Scot

, p. 3822 - 3828 (2008/10/08)

The rate of electron self-exchange between chromium(I) hexakis(2,6-diisopropylphenyl isocyanide) tetrafluoroborate, Cr(CNdipp)6BF4, and Cr(CNdipp)6(BF4)2 has been measured as a function of reactant concentration, temperature, and solvent (acetone, acetonitrile, nitromethane, methylene chloride, methanol) by 1H NMR line broadening. The rate of electron self-exchange between Cr(CNdipp)6 and Cr(CNdipp)6BF4 has been measured as a function of temperature in acetone. The Cr(0)/Cr(I) rate constants, ca. 108 M-1 s-1, are a factor of 10 higher than the Cr(I)/Cr(II) values in methylene chloride and acetone. The Cr(I)/Cr(II) rate constants vary little between the solvents at 298 K. The activation parameters do vary, showing a compensating pattern for the solvents studied. The results for the two systems are compared with the predictions of the standard Marcus collision and solvent dynamic models. The experimental electron self-exchange rate constants are in excellent agreement and the activation parameters are in reasonable agreement with the predictions from the Marcus collision model. The calculated activation parameters from the Marcus collision model show no trend with solvent, and thus do not predict the compensation behavior.

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