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Tris(2,6-bis(difluoromethyl)phenyl)phosphine is a phosphorus-containing organic compound with the chemical formula C18H12F6P. It is a colorless, crystalline solid that is soluble in common organic solvents. tris<2,6-bis(difluoromethyl)phenyl>phosphine is characterized by its three 2,6-bis(difluoromethyl)phenyl groups attached to a central phosphorus atom. It is often used as a ligand in coordination chemistry, particularly in the formation of transition metal complexes, due to its ability to stabilize metal centers and influence the electronic properties of the resulting complexes. The difluoromethyl groups on the phenyl rings contribute to the compound's stability and reactivity, making it a valuable building block in the synthesis of various organophosphorus compounds and materials with potential applications in catalysis, materials science, and pharmaceuticals.

79839-45-5

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79839-45-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 79839-45-5 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 7,9,8,3 and 9 respectively; the second part has 2 digits, 4 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 79839-45:
(7*7)+(6*9)+(5*8)+(4*3)+(3*9)+(2*4)+(1*5)=195
195 % 10 = 5
So 79839-45-5 is a valid CAS Registry Number.

79839-45-5Relevant academic research and scientific papers

Iterative Analysis of Exchange-Broadened NMR Band Shapes. The Mechanism of Correlated Rotations in Triaryl Derivatives of Phosphorus and Arsenic

Wille, Eva E.,Stephenson, David S.,Capriel, Peter,Binsch, Gerhard

, p. 405 - 415 (2007/10/02)

Trisphosphine and trisarsine as well as the corresponding oxides have been synthesized.The 19F NMR data extracted from the static spectra at low temperature rigorously establish that all four compounds adopt a chiral propeller equilibrium conformation in solution.A theoretical analysis of the conformational dynamics allows for seven differentiable permutational mechanisms (M1-M7), of which five (M1-M4, M7) could be experimentally excluded on the basis of the fast-exchange limit spectra.Iterative band shape analyses of the exchange-broadened spectra for the remaining two possibilities (M5, M6) and for two alternative relative assignments of the 19F chemical shifts simultaneously yielded the correct assignment as well as direct and quantitative proof for the exclusive operation of the permutational mechanism M5, which corresponds to a process commonly referred to in the literature as the "two-ring flip".The relative shift assignment was independently confirmed by a selective population inversion experiment on the arsenic compound.The skeleton of a density matrix theory for the latter experiment is outlined in the Appendix.

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