The synthesis of benzofurans by the reaction of the palladium(II) complex Pd{1-CH-2-OCH(COEt)-C,C}(bipy) (bipy = 2,2'-bipyridine) with hypervalent iodine(III) reagents [Ph(CHCHR)I] has been examined by Density Functional Theory. Results highlight the role of oxidative alkenylation to form Pd intermediates and the role of initial adduct formation in this process, an annulation process facilitated by Pd, and the role of 'chain-walking' at Pd centres to allow formation of the lowest energy product. Computation (R = Me) allows assignment of an initially formed adduct with a 'Pd → I' interaction at -50 °C, and, after oxidative alkenylation of Pd and reductive elimination from a Pd centre Ar⋯Alkenyl coupling, formation of a second intermediate with a structure consistent with NMR detection (R = -hexyl) at -30 °C is obtained. This Pd complex, containing a coordinated alkene group in Pd{1-(RHCC)CH-2-OCH(COEt)-η-CC,C}(bipy), undergoes a 5--trig annulation by forming a C-C bond to give a complex with a bicyclic carbon skeleton suitable for subsequent formation of benzofurans. A series of facile rearrangements including chain-walking results in formation of a lowest energy complex of three feasible hydrido(alkene)palladium(II) species, leading to decomposition and release of the observed benzofuran isomer isolated under synthesis conditions. The computational study allows reinterpretation of the NMR data reported previously, in particular the determination of barriers in the reaction pathway allowing assignment of structure for key intermediates.
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http://dx.doi.org/10.1039/d2dt00759b | DOI Listing |
J Org Chem
December 2024
Collaborative Innovation Center for Advanced Organic Chemical Materials Co-constructed by the Province and Ministry, Ministry of Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules. Hubei Key Laboratory for Precision Synthesis of Small Molecule Pharmaceuticals. College of Chemistry and Chemical Engineering, Hubei University, Wuhan 430062, P. R. China.
A ligand-promoted oxidative dehydrogenation C-H alkenylation of indoles and olefins was achieved using commercial and low-cost Co(NO)·6HO as a catalyst and Mn(OAc) as an oxidant. The design and selection of electrically unique methyl-substituted salicylaldehyde as a ligand is the key to achieve this transformation. This protocol can introduce an indole backbone into diverse bioactive molecules such as ibuprofen, naproxen, and Estrol for late-stage synthetic modification, which has potential applications in the discovery of drug molecules containing an indole motif.
View Article and Find Full Text PDFJ Org Chem
December 2024
Department of Chemistry, Indian Institute of Science Education and Research (IISER)-Pune, Dr. Homi Bhabha Road, Pashan, Pune, Maharashtra 411008, India.
A Pd (II)-catalyzed direct C3-(sp)-H alkenylation of heteroarenes using benzothiazole as a directing group was successfully achieved. A wide range of 2--alkylpyrroles undergo an oxidative coupling with a variety of acrylates to furnish highly regio- and chemoselective E-alkenylation products at the C3 position. An important intermediate complex has been isolated and characterized so as to have an insight into the mechanism.
View Article and Find Full Text PDFJ Org Chem
December 2024
Key Laboratory of Biocatalysis & Chiral Drug Synthesis of Guizhou Province, School of Pharmacy, Zunyi Medical University, Zunyi 563003, P. R. China.
A convenient electrochemical oxidative cascade cyclization of alkenes equipped with pendant alcohols with general nucleophiles was developed. Using readily available diarylmethanimine and carboxylic acids as nucleophilic sources, a broad range of internal alkene and terminal alkene substrates could produce RCO- and ArCN-functionalized -heterocycles in moderate to high yields without the requirement for external oxidants and metals. These resulting products can subsequently be hydrolyzed to yield valuable NH- and OH-functionalized tetrahydrofurans and tetrahydropyranes under mild conditions.
View Article and Find Full Text PDFFerrocenyl amines as directing groups for C-H activation have limitations as they are prone to undergo oxidation, allylic deamination, and β-hydride elimination. The fundamental challenge observed here is the competition between the desired C-H activation the vulnerable β-C-H bond activation of amines and fine-tuning of a suitable oxidant which avoids the oxidation of the β-C-H bond and ferrocene. Herein, the potential of an axially chiral NOBINAc ligand is revealed to implement the enantioselective Pd-catalyzed C-H activation process of ferrocenyl amines.
View Article and Find Full Text PDFJ Am Chem Soc
December 2024
School of Physical Science and Technology, ShanghaiTech University, Shanghai 201210, China.
Ni-catalyzed multicomponent cross-couplings have emerged as a powerful strategy for efficiently constructing complex molecular architectures from a diverse array of organic halides. Despite its potential, selectively forming multiple chemical bonds in a single operation, particularly in the realm of cross-electrophile coupling catalysis, remains a significant challenge. In this study, we have developed a consecutive open-shell reductive Ni catalysis, enabling the formation of two geminal C(sp)-C(sp) bonds from two stereoelectronically similar C(sp)-I reactants in conjunction with a methylene electrophile.
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