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Quinuclidone
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Quinuclidones are a class of with C7H11NO with two structural isomers for the base skeleton 3-quinuclidone and 2-quinuclidone.

[[Image:Quinuclidone structures.svg|thumb|center|500px|Quinuclidone structures: 1: 2-quinuclidone; 2: 2-quinuclidone hydrotetrafluoroborate; 3: 3-quinuclidone; 4: 3-quinuclidone hydrochloride]]

3-Quinuclidone (1-azabicyclo2.2.2octan-3-one) is an uneventful molecule that can be synthesized as the hydrochloric acid salt by a Dieckman condensation:

The other isomer, 2-quinuclidone, appears equally uneventful, but in fact it has defied synthesis until 2006. The reason is that this molecule is very unstable because its group has the and the group not properly aligned, as may be expected for an amide, as a result of . This behaviour is predicted by Bredt's Rule, and formal group resembles in fact an , as evidenced by the ease of salt formation.

The organic synthesis of the tetrafluoroborate salt of 2-quinuclidone is a six-step affair starting from the final step being an - (38% yield):Reaction sequence: First step is a Baeyer-Villiger oxidation of 1 with Meta-Chloroperoxybenzoic acid to 2, followed by organic reduction with lithium aluminium hydride in to 3. The primary alcohol group is replaced by a group in 4 with and and in turn displaced by an group in 5 by action of in dimethylformamide. Oxidation of the alcohol to the 6 takes place with Dess-Martin periodinane in . The final step to 2-quinuclidonium tetrafluoroborate 8 is a through intermediate 7 with in .

This compound rapidly reacts with water to the corresponding with a chemical half-life of 15 seconds. X-ray diffraction shows on the nitrogen atom (59° compared to 0 for reference dimethylformamide) and torsion around the carbon-nitrogen bond to an extent of 91°. Attempts to prepare the free-base lead to uncontrolled .

It is, nevertheless, possible to estimate its basicity in an experiment in which amine pairs (the quinuclidonium salt and a reference amine such as or ) are introduced into a mass spectrometer. The relative basicity is then revealed by collision-induced dissociation of the heterodimer. Further analysis via the extended kinetic method allows for the determination of the proton affinity and gas phase basicity of 2-quinuclidonium. This method has determined that quinuclidone ranks among secondary and tertiary amines in terms of proton affinity. This high basicity is hypothesized to be due to the loss of electron delocalization when the amide bond is twisted—this causes misalignment of the , resulting in loss of electron resonance.

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