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Cyclohexenone
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Cyclohexenone is an which is a versatile intermediate used in the synthesis of a variety of chemical products such as pharmaceuticals and fragrances.Podraze, K.F. Org. Prep. Proced. Int., 1991, 23, p. 217. It is colorless liquid, but commercial samples are often yellow.

Industrially, cyclohexenone is prepared from by . Organic Building Blocks of the Chemical Industry, Harry H. Szmant,

Cyclohexenone is a , or more precisely an enone. Common reactions include nucleophilic conjugate addition with organocopper reagents, and Robinson annulations. Tetrahedron Lett. 34, 3881, (1993)


Synthesis
Several routes exist for the production of cyclohexenone. For the laboratory scale, it can be produced from via 1,3-cyclohexanedione.

Cyclohexenone is obtained by of followed by acid hydrolysis.

It can be obtained from cyclohexanone by α-bromination followed by treatment with base. Hydrolysis of 3-chloro cyclohexene followed by oxidation of the cyclohexenol is yet another route.

Cyclohexenone is produced industrially by catalytic oxidation of cyclohexene, for example with hydrogen peroxide and catalysts. Several patents describe diverse oxidizing agents and catalysts.


Reactions
Cyclohexenone is a widely used building block in organic synthesis chemistry, as it offers many different ways to extend molecular frameworks.

As an enone, cyclohexenone is easily adapted to with nucleophiles (such as or silyl enol ethers) or, it could be employed by a Diels-Alder reaction with electron-rich . Furthermore, this compound reacts with organocopper compounds from 1,4-addition (Michael addition), or with Grignard reagents 1,2-addition, i.e., with attack of the nucleophile at the carbonyl carbon atom. Cyclohexenone is also used in multi-step synthesis in the construction of polycyclic natural products. It is prochiral.

With strong bases, the positions 4 and 6 (the two CH2-groups of the carbonyl group and the C-C double bond adjacent) are deprotonated.

Cyclohexenone is an in-vitro catalyst for a relatively mild of .Researchers in Japan were attempting to use t-butyl peroxide as a catalyst for decarboxylation using a solvent choice of . Curiously they found that when they used lower-purity (e.g. technical grade, 98%) cyclohexanol, the reaction proceeded as much as 4 times faster compared to when they used relatively pure cyclohexanol (>99.3%). They found that cyclohexanol contained cyclohexenone as a natural impurity, which was three times more abundant in the technical grade cyclohexenone compared to the more purified cyclohexanol (~0.3% versus ~0.1%). Further research showed that 1% cyclohexenone in cyclohexanol will decarboxylate most alpha-amino acids, including non-standard ones, with a yield of 80-95% in a matter of several hours. The exceptions are certain amino acids like , which was reported to take over 26 hours, and poly-amino acids, which fail to decarboxylate using 2-cyclohexenone and another route must be found instead.


Related compounds

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