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1.
J Am Chem Soc ; 146(22): 15293-15300, 2024 Jun 05.
Artigo em Inglês | MEDLINE | ID: mdl-38781687

RESUMO

The Paternò-Büchi reaction is the [2 + 2] photocycloaddition of a carbonyl with an alkene to afford an oxetane. Enantioselective catalysis of this classical photoreaction, however, has proven to be a long-standing challenge. Many of the best-developed strategies for asymmetric photochemistry are not suitable to address this problem because the interaction of carbonyls with Brønsted or Lewis acidic catalysts can alter the electronic structure of their excited state and divert their reactivity toward alternate photoproducts. We show herein that a triplet rebound strategy enables the stereocontrolled reaction of an excited-state carbonyl compound in its native, unbound state. These studies have resulted in the development of the first highly enantioselective catalytic Paternò-Büchi reaction, catalyzed by a novel hydrogen-bonding chiral Ir photocatalyst.

2.
Chem Rev ; 122(2): 1654-1716, 2022 01 26.
Artigo em Inglês | MEDLINE | ID: mdl-34606251

RESUMO

Asymmetric catalysis is a major theme of research in contemporary synthetic organic chemistry. The discovery of general strategies for highly enantioselective photochemical reactions, however, has been a relatively recent development, and the variety of photoreactions that can be conducted in a stereocontrolled manner is consequently somewhat limited. Asymmetric photocatalysis is complicated by the short lifetimes and high reactivities characteristic of photogenerated reactive intermediates; the design of catalyst architectures that can provide effective enantiodifferentiating environments for these intermediates while minimizing the participation of uncontrolled racemic background processes has proven to be a key challenge for progress in this field. This review provides a summary of the chiral catalyst structures that have been studied for solution-phase asymmetric photochemistry, including chiral organic sensitizers, inorganic chromophores, and soluble macromolecules. While some of these photocatalysts are derived from privileged catalyst structures that are effective for both ground-state and photochemical transformations, others are structural designs unique to photocatalysis and offer insight into the logic required for highly effective stereocontrolled photocatalysis.


Assuntos
Estereoisomerismo , Catálise
3.
Org Lett ; 23(9): 3496-3501, 2021 05 07.
Artigo em Inglês | MEDLINE | ID: mdl-33844561

RESUMO

Cyclobutyl moieties in drug molecules are rare, and in general, they are minimally substituted and stereochemically simple. Methods to assemble structurally complex cyclobutane building blocks suitable for rapid diversification are thus highly desirable. We report herein a photosensitized [2 + 2] cycloaddition with vinyl boronate esters affording straightforward access to complex, densely functionalized cyclobutane scaffolds. Mechanistic studies suggest an activation mode involving energy transfer to the styrenyl alkene rather than the vinyl boronate ester.


Assuntos
Alcenos/química , Ácidos Borônicos/química , Ciclobutanos/química , Reação de Cicloadição , Ésteres , Estrutura Molecular , Fármacos Fotossensibilizantes
4.
J Am Chem Soc ; 141(34): 13625-13634, 2019 08 28.
Artigo em Inglês | MEDLINE | ID: mdl-31329459

RESUMO

Enantioselective catalysis of excited-state photoreactions remains a substantial challenge in synthetic chemistry, and intermolecular photoreactions have proven especially difficult to conduct in a stereocontrolled fashion. Herein, we report a highly enantioselective intermolecular [2 + 2] cycloaddition of 3-alkoxyquinolones catalyzed by a chiral hydrogen-bonding iridium photosensitizer. Enantioselectivities as high as 99% ee were measured in reactions with a range of maleimides and other electron-deficient alkene reaction partners. An array of kinetic, spectroscopic, and computational studies supports a mechanism in which the photocatalyst and quinolone form a hydrogen-bonded complex to control selectivity, yet upon photoexcitation of this complex, energy transfer sensitization of maleimide is preferred. The sensitized maleimide then reacts with the hydrogen-bonded quinolone-photocatalyst complex to afford a highly enantioenriched cycloadduct. This finding contradicts a long-standing tenet of enantioselective photochemistry that held that stereoselective photoreactions require strong preassociation to the sensitized substrate in order to overcome the short lifetimes of electronically excited organic molecules. This system therefore suggests that a broader range of alternate design strategies for asymmetric photocatalysis might be possible.


Assuntos
Alcenos/química , Irídio/química , Maleimidas/química , Quinolonas/química , Álcoois/síntese química , Álcoois/química , Alcenos/síntese química , Catálise , Reação de Cicloadição/métodos , Transferência de Energia , Ligação de Hidrogênio , Maleimidas/síntese química , Processos Fotoquímicos , Quinolonas/síntese química , Estereoisomerismo
5.
J Am Chem Soc ; 139(47): 17186-17192, 2017 11 29.
Artigo em Inglês | MEDLINE | ID: mdl-29087702

RESUMO

Stereochemical control of electronically excited states is a long-standing challenge in photochemical synthesis, and few catalytic systems that produce high enantioselectivities in triplet-state photoreactions are known. We report herein an exceptionally effective chiral photocatalyst that recruits prochiral quinolones using a series of hydrogen-bonding and π-π interactions. The organization of these substrates within the chiral environment of the transition-metal photosensitizer leads to efficient Dexter energy transfer and effective stereoinduction. The relative insensitivity of these organometallic chromophores toward ligand modification enables the optimization of this catalyst structure for high enantiomeric excess at catalyst loadings as much as 100-fold lower than the optimal conditions reported for analogous chiral organic photosensitizers.


Assuntos
Irídio/química , Processos Fotoquímicos , Fármacos Fotossensibilizantes/química , Catálise , Hidrogênio/química , Ligação de Hidrogênio , Ligantes , Quinolonas/química , Estereoisomerismo
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