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Pyridinylidenaminophosphines: Facile Access to Highly Electron-Rich Phosphines. | LitMetric

Pyridinylidenaminophosphines: Facile Access to Highly Electron-Rich Phosphines.

Chemistry

Institut für Anorganische und Analytische Chemie, Westfälische Wilhelms-Universität Münster, Corrensstrasse 30, 48149, Münster, Germany.

Published: January 2020

AI Article Synopsis

  • Electron-rich tertiary phosphines are important for chemical synthesis but are typically expensive to make; this study presents a more cost-effective synthesis method using common starting materials.
  • The new phosphines featuring 1-alkylpyridin-4-ylidenamino and 1-alkylpyridin-2-ylidenamino groups demonstrate enhanced electron donor capabilities compared to standard phosphines and N-heterocyclic carbenes.
  • The study also showcases the strong nucleophilic properties of these phosphines in forming adducts with CO and CS, and explores their coordination chemistry with metals like Cu, Au, and Pd.

Article Abstract

Electron-rich tertiary phosphines are valuable species in chemical synthesis. However, their broad application as ligands in catalysis and reagents in stoichiometric reactions is often limited by their costly synthesis. Herein, we report the synthesis and properties of a series of phosphines with 1-alkylpyridin-4-ylidenamino and 1-alkylpyridin-2-ylidenamino substituents that are accessible in a very short and scalable route starting from commercially available aminopyridines and chlorophosphines. The determination of the Tolman electronic parameter (TEP) value reveals that the electron donor ability can be tuned by the substituent pattern at the aminopyridine backbone and it can exceed that of common alkylphosphines and N-heterocyclic carbenes. The potential of the new phosphines as strong nucleophiles in phosphine-mediated transformations is demonstrated by the formation of Lewis base adducts with CO and CS . In addition, the coordination chemistry of the new phosphines towards Cu , Au , and Pd metal centers has been explored, and a convenient procedure to introduce the most basic phosphine into metal complexes starting from air-stable phosphonium salt is described.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6972615PMC
http://dx.doi.org/10.1002/chem.201904621DOI Listing

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