In Situ Generation of Carbenes: A General and Versatile Platform for Organocatalytic Living Polymerization
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- 14 February 2003
- journal article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 125 (10), 3046-3056
- https://doi.org/10.1021/ja021084+
Abstract
A metal-free, organocatalytic approach to living polymerization using N-heterocyclic carbenes as nucleophilic catalysts generated and used in situ in a single-pot process is detailed. The N-heterocyclic carbene catalyst platform is extremely versatile, as the nature of the substituents has a pronounced effect of catalyst stability and activity toward different substrates. The generation of imidazolium- and thiazaolium-based carbenes was accomplished from the reaction of the corresponding salts with the appropriate bases. This allowed the rapid screening of libraries of catalysts that provided a basic understanding of catalyst structure (sterics, electronics, etc.) with the polymerization rate, control, substrate, and range of molecular weights. The imidazole-based catalysts were significantly more active toward ROP than the thiazolium-based analogues. No appreciable differences between imidazol-2-ylidene and imidazolin-2-ylidene catalysts were observed. Less sterically demanding carbenes were found to be more active toward ring-opening polymerization (ROP) than their sterically encumbered analogues for lactone polymerization. These data prompted the investigation of ionic liquid as a precatalyst reservoir in a phase-transfer polymerization with an immiscible THF solution of monomer and initiator. In situ activation of the ionic liquid generates carbene that migrates to the organic phase effecting living ROP. Precatalyst (ionic liquid) regeneration terminates polymerization. This simple reaction/recycle protocol readily allows repetitive ROPs from the ionic liquid using commercially available materials.Keywords
This publication has 59 references indexed in Scilit:
- From metal‐catalyzed radical telomerization to metal‐catalyzed radical polymerization of vinyl chloride: Toward living radical polymerization of vinyl chlorideJournal of Polymer Science Part A: Polymer Chemistry, 2001
- Synthesis and properties of polydimethylsiloxane-containing block copolymers via living radical polymerizationJournal of Polymer Science Part A: Polymer Chemistry, 2001
- Synthesis of star-shaped polystyrenes via nitroxide-mediated stable free-radical polymerizationJournal of Polymer Science Part A: Polymer Chemistry, 2000
- Layered Dendritic Block CopolymersAngewandte Chemie International Edition, 1998
- Multistep Synthesis on the Surface of Self-Assembled Thiolate Monolayers on Gold: Probing the Mechanism of the Thiazolium-Promoted Acyloin CondensationJournal of the American Chemical Society, 1997
- A stable diaminocarbeneJournal of the American Chemical Society, 1995
- Macromolecular engineering of polylactones and polylactides. 5. Synthesis and characterization of diblock copolymers based on poly-iε-caprolactone and poly(L,L or D,L)lactide by aluminum alkoxidesMacromolecules, 1991
- Nucleophile Carben‐Chemie, IV. Reaktion des Bis‐[1.3‐diphenyl‐imidazolidinylidens‐(2)] mit einigen CarbonylverbindungenEuropean Journal of Inorganic Chemistry, 1963
- Nucleophile Carben‐Chemie Darstellung des Bis‐[1.3‐diphenyl‐imidazolidinyliden‐(2)]Angewandte Chemie, 1961
- On the Mechanism of Thiamine Action. IV.1 Evidence from Studies on Model SystemsJournal of the American Chemical Society, 1958