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1.
Angew Chem Int Ed Engl ; 63(14): e202318774, 2024 Apr 02.
Artículo en Inglés | MEDLINE | ID: mdl-38324736

RESUMEN

Arynes are fleeting, high-energy intermediates that undergo myriad trapping reactions by nucleophiles. Their unusual reactivity compared to other electrophiles can spur unexpected mechanistic pathways enroute to the formation of benzenoid products. Herein we explore a particularly unique case of thermally generated arynes reacting with phosphoranes to form helical dibenzothiophenes and -selenophenes. Multiple new helical polycyclic aromatic products are reported. DP4+ and X-ray crystallographic analysis were used in tandem to confirm the structural topologies of selected products and to demonstrate the utility of DP4+ for distinguishing between isomeric polycyclic aromatic compounds. Lastly, we discuss a plausible mechanism consistent with DFT computations that accounts for the product formation; namely, ligand coupling (i.e., reductive elimination) within a hypervalent, pentacarbon-ligated σ-phosphorane furnishes the dibenzothio- or dibenzoselenophene.

2.
J Am Chem Soc ; 143(34): 13501-13506, 2021 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-34424692

RESUMEN

Here we disclose a sulfurane-mediated method for the formation of dimeric dibenzofuran helicenes via the reaction between diaryl sulfoxides and hexadehydro-Diels-Alder (HDDA) derived benzynes. A variety of S-shaped and U-shaped helicenes were formed under thermal conditions. Both experimental and DFT studies support a sulfur(IV)-based coupling (aka ligand coupling) mechanism involving tetracarbo-ligated S(IV) intermediates undergoing reductive elimination to afford the helicene products. This process involves the de novo generation of five new rings in a single operation and constitutes a new method for the construction of topologically interesting, polycyclic aromatic compounds.


Asunto(s)
Derivados del Benceno/química , Dibenzofuranos/química , Azufre/química , Reacción de Cicloadición , Teoría Funcional de la Densidad , Dibenzofuranos/síntesis química , Conformación Molecular
3.
Org Lett ; 24(2): 501-505, 2022 01 21.
Artículo en Inglés | MEDLINE | ID: mdl-34967220

RESUMEN

We report that the treatment of unsymmetrical 2,3-disubstituted aziridines with TiCl4 yields ß-phenethylamine products via the intermediacy of a phenonium ion. Derivatization of the products obtained via this method is demonstrated. Computational analysis of the reaction pathway provides insight into the reaction mechanism, including the selectivity of the phenonium opening.


Asunto(s)
Aziridinas
4.
Org Lett ; 22(2): 410-416, 2020 01 17.
Artículo en Inglés | MEDLINE | ID: mdl-31880945

RESUMEN

Continuous flow has been used widely in process chemistry and academic settings for various applications. However, initial reaction discovery has generally remained "batch-exclusive" despite the existence of efficient, reproducible flow systems. We hereby disclose a workflow to bridge the gap between early medicinal chemistry efforts and process-scale development, showcased by the discovery and optimization of a metallaphotoredox-catalyzed cross-coupling between benzylic chlorides and aryl bromides, followed by two library syntheses of complex drug-like compounds.

5.
Chem Sci ; 9(32): 6639-6646, 2018 Aug 28.
Artículo en Inglés | MEDLINE | ID: mdl-30310596

RESUMEN

The emergence of photoredox catalysis has enabled the discovery of mild and efficient conditions for the generation of a variety of radical reaction platforms. Herein is disclosed the development of a conjugate addition reaction of non-activated alkyl bromides to Michael acceptors under visible-light photoredox catalysis. Optimization of the reaction was achieved using high-throughput experimentation (HTE) tools to enable the identification of mild, general and practical reaction conditions. A diverse set of alkyl bromides was successfully added to cyclic or acyclic α,ß-unsaturated esters and amides. The features of this transformation allowed also access to a key intermediate of Vorinostat®, an HDAC inhibitor used to fight cancer and HIV.

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