A Terminal Rh Methylidene from Activation of CH2Cl2

Oxidative addition of carbon–halogen bonds at transition metals typically follows either a two-electron pathway (concerted M–R/M–X formation) or a radical chain pathway (stepwise M–R/M–X formation). When the reactive metal species is generated slowly, however, both mechanisms can compete to yield un...

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Veröffentlicht in:Organometallics 2020-07, Vol.39 (13), p.2356-2364
Hauptverfasser: Morrow, Travis J, Gipper, Jordan R, Christman, William E, Arulsamy, Navamoney, Hulley, Elliott B
Format: Artikel
Sprache:eng
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Zusammenfassung:Oxidative addition of carbon–halogen bonds at transition metals typically follows either a two-electron pathway (concerted M–R/M–X formation) or a radical chain pathway (stepwise M–R/M–X formation). When the reactive metal species is generated slowly, however, both mechanisms can compete to yield unexpected reactivity paths. The present report highlights the synthesis of rhodium methylidenes from chloroalkanes (e.g., CH2Cl2 and CHCl3) at POP-pincer frameworks (e.g., POP = 4,6-bis­(di-tert-butylphosphino)­dibenzo­[b,d]­furan) via a cascade of halide abstraction and electron transfer steps. Experimental and computational studies are reported that support the proposed mechanism, including characterization of important reaction intermediates. The overall transformation represents a route toward reactive metal alkylidenes using milder and less-reactive carbenoid precursors than what is presently used.
ISSN:0276-7333
1520-6041
DOI:10.1021/acs.organomet.0c00031