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Topic: Pinacol coupling mechanism  (Read 4741 times)

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Offline alis88

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Pinacol coupling mechanism
« on: December 30, 2008, 12:58:31 PM »
Hello all

Please can someone explain the following pinacol coupling mechanism to form the diol in the reaction:

http://img132.imageshack.us/my.php?image=pinacolco8.jpg

The reagents are SmI2, t-BuOH and THF.

Is THF the solvent?

Does t-BuOH provide the hydrogens?

And SmI2 creates the radical???

Thank you in advance.

Regards

Alis

Offline dfodor

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Re: Pinacol coupling mechanism
« Reply #1 on: December 30, 2008, 04:41:41 PM »
Yes, SmI2 is a single-electron reducing agent, THF is the solvent.
A proton donor is required for the reaction but t-BuOH is strange for me. Are you sure there is nothing else?

Offline alis88

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Re: Pinacol coupling mechanism
« Reply #2 on: December 31, 2008, 04:45:30 AM »
Yes, I am sure there is nothing else.

The reagents are SmI2, t-BuOH, and THF at -78 C to rt.

The reaction can be found in Tetrahedron Letters, article "Synthesis of N-heterocyclic diols by diastereoselective pinacol coupling reactions" by Sandeep Handa, Manpreet S. Kachala and Sarah R. Lowe.

Please could you help me with the mechanism?

Kind regards

Alis

Offline Mitsunobo

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Re: Pinacol coupling mechanism
« Reply #3 on: January 28, 2009, 12:58:58 PM »
SmI2 attacks the carbonyl oxygen creating a radical which can be delocalized to the carbonyl carbon. Sm can coordinate the 2 oxygen the same way Mg does in the pinacol reaction.

The carbonyl carbon radicals joins to form a bond.

The hydroxyls will be formed after Sm is displaced by H+ which will be taken from tBuOH.

Hope that helps.


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