Enantioselective photochemistry through Lewis acid–catalyzed triplet energy transfer
Author(s) -
Travis R. Blum,
Zachary D. Miller,
Desiree M. Bates,
Ilia A. Guzei,
Tehshik P. Yoon
Publication year - 2016
Publication title -
science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 12.556
H-Index - 1186
eISSN - 1095-9203
pISSN - 0036-8075
DOI - 10.1126/science.aai8228
Subject(s) - lewis acids and bases , chemistry , excited state , catalysis , chiral lewis acid , enantioselective synthesis , photochemistry , ruthenium , electron transfer , lewis acid catalysis , chalcone , substrate (aquarium) , photosensitizer , combinatorial chemistry , stereochemistry , organic chemistry , physics , oceanography , nuclear physics , geology
Relatively few catalytic systems are able to control the stereochemistry of electronically excited organic intermediates. Here we report the discovery that a chiral Lewis acid complex can catalyze triplet energy transfer from an electronically excited photosensitizer. We applied this strategy to asymmetric [2 + 2] photocycloadditions of 2'-hydroxychalcones, using tris(bipyridyl) ruthenium(II) as a sensitizer. A variety of electrochemical, computational, and spectroscopic data rule out substrate activation by means of photoinduced electron transfer and instead support a mechanism in which Lewis acid coordination dramatically lowers the triplet energy of the chalcone substrate. We expect that this approach will enable chemists to more broadly apply their detailed understanding of chiral Lewis acid catalysis to stereocontrol in reactions involving electronically excited states.
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