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40244-78-8

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40244-78-8 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 40244-78-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 4,0,2,4 and 4 respectively; the second part has 2 digits, 7 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 40244-78:
(7*4)+(6*0)+(5*2)+(4*4)+(3*4)+(2*7)+(1*8)=88
88 % 10 = 8
So 40244-78-8 is a valid CAS Registry Number.

40244-78-8Upstream product

40244-78-8Downstream Products

40244-78-8Relevant academic research and scientific papers

Proton transfer: Vs. oligophosphine formation by P-C/P-H σ-bond metathesis: Decoding the competing Br?nsted and Lewis type reactivities of imidazolio-phosphines

Cica?-Hudi, Mario,Feil, Christoph M.,Birchall, Nicholas,Nieger, Martin,Gudat, Dietrich

, p. 17401 - 17413 (2020)

Studies of the protonation and alkylation of imidazolio-phosphides and deprotonation of imidazolio-phosphines reveal a complex behaviour that can be traced back to an interplay of Br?nsted-type proton transfers and Lewis-type P-P bond formation reactions. As a consequence, the expected (de)protonation and (de)alkylation processes compete with reactions producing cyclic or linear oligophosphines. A careful adjustment of the conditions allows us to selectively address each reaction channel and devise specific synthesis methods for primary, secondary and tertiary imidazolio-phosphines, imidazolio-alkylphosphides, and cyclic oligophosphines, respectively. Mechanistic studies reveal that oligophosphines assemble in sequential P-P bond formation steps involving the condensation of cationic imidazolio-phosphines via σ-bond metathesis and concomitant elimination of an imidazolium ion. Imidazolio-phosphides catalyse these transformations. Computational model studies suggest that the metathesis proceeds in two stages via an initial nucleophilic substitution under expulsion of a carbene, and a subsequent proton transfer step that generates an imidazolium cation and provides the driving force for the whole transformation. As energy barriers are predicted to be low or even absent, different elementary steps are presumed to form a network of mutually coupled equilibrium processes. Cyclic oligophosphines or their dismutation products are identified as the thermodynamically favoured final products in the reaction network.

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