Like all Grignard dimers, Hauser bases derived from 2,2,6,6-tetramethylpiperidine and HMDS are bridged by halides in the solid state. In contrast to Grignard reagents, dimeric amido bridged Hauser bases exist, too. All have one in common: they are bridged by less bulky amido ligands such as Et2N−, Ph3P=N− and iPr2N−. The displacement to halide bridges may be a result of the bulky groups on the amide ligand.
Solution structure
Although there is a great deal of information on the utility of these reagents, very little is known regarding the nature of Hauser bases in solution. One reason for that lack of information is that Hauser bases show a complex behaviour in solution. It was proposed that it could be similar to the Schlenk equilibrium of Grignard reagents in ether solution, where more than one magnesium containing species exists. In 2016, Neufeld et al. showed by diffusion-ordered spectroscopy that the solution structure of iPr2NMgCl is best represented by the common Schlenk equilibrium: This equilibrium is highly temperature dependent with heteroleptic to be the main species at high temperatures and homoleptic at low temperatures. Dimeric species with bridging chlorides and amides are also present in the THF solution, although alkyl magnesium chlorides do not dimerize in THF. At low temperatures, where an excess of MgCl2 is available MgCl2 co-coordinated species are present in solution, too.
Uses
Hauser bases are generally used as metalation reagents, like organolithiums or metal amides. The breakthrough in synthetic protocols of Hauser bases culminates in the 1980s and 1990s. Eaton and co-workers showed that iPr2NMgBr selectively magnesiate carboxamides in ortho position. Later, Kondo, Sakamo and co-workers reported the utility of iPr2NMgX as selective deprotonation reagents for heterocyclic thiophene and phenylsulphonyl-substituted indoles. A huge disadvantage of Hauser bases is their poor solubility in THF. In consequence, the metalation rates are slow and a huge excess of base is required. This circumstance complicates the functionalization of the metaled intermediate with an electrophile. A better solubility and reactivity was achieved by adding to the Hauser base stoichiometric amounts of LiCl. These so called Turbo-Hauser bases like e.g. TMPMgCl·LiCl and iPr2NMgCl·LiCl are commercially available and show an enhanced kinetic basicity, excellent regioselectivity and high functional group tolerance for a large number of aromatic and heteroaromatic substrates.
Preparation
The Hauser bases are prepared by mixing an amine and a Grignard reagent. R2NH + R'MgX → R2NMgX + R'H X = Cl, Br, I