The regio- and stereoselectivities of the hydroformylation reaction catalyzed by an unmodified Rh catalyst have been investigated at the B3P86/6-31G* level with Rh described by effective core potentials in the LANL2DZ valence basis set for a number of either mono- or (1,1-, 1,2-, 1,3-) di-substituted substrates and compared with a variety of earlier results of ours, supplemented with free energy results when not already available. The computational prediction of regio- and stereoselectivities in nonreversible hydroformylations performed under mild reaction conditions is seemingly possible provided a careful conformational search for TS structures is carried out and all the low energy conformers are taken into account. The internal energy can be used to compute both the regio- and stereoselectivities in the hydroformylation of 1,1- and 1,3-substituted substrates with satisfactory results, whereas for 1,2-substituted substrates the regioselectivity determined from the internal energy is in good agreement with the experiment in the case of aliphatic olefins just for the lowest terms in the series (i.e., methyl and ethyl substituents), while the ratios are only qualitatively correct for the slightly bulkier iso-propyl and tert-butyl moieties. The theory/experiment agreement becomes decidedly better using the free energy differences instead.
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Angew Chem Int Ed Engl
January 2025
Sichuan University - Wangjiang Campus: Sichuan University, Chemistry, 29 Wangjiang Rd, 610064, Chengdu, CHINA.
Poly(lactic-co-glycolic acid) (PLGA) has been widely employed for various biomedical applications owing to its biodegradability and biocompatibility. The discovery of the stereocomplex formation between enantiomeric alternating PLGA pairs underscored its potential as high-performance biodegradable materials with diverse material properties and biodegradability. Herein, we have established a regio- and stereoselective ring-opening polymerization approach for the synthesis of stereocomplexed isoenriched alternating PLGA from racemic methyl-glycolide (rac-MG).
View Article and Find Full Text PDFChem Sci
December 2024
Key Laboratory of Drug-Targeting and Drug Delivery System of the Education Ministry and Sichuan Province, Sichuan Research Center for Drug Precision Industrial Technology, West China School of Pharmacy, Sichuan University Chengdu 610041 China +86 28 85502609.
As a class of readily available and multifunctional building blocks, the chemistry of 4-alken-2-ynyl carbonates remains to be explored. Presented herein is a palladium-catalysed cascade transformative reaction between 4-alken-2-ynyl carbonates and -functionalised activated alkenes. Achiral 1,1-bisalkyl-4-alken-2-ynyl carbonates undergo highly regioselective propargylic substitution with -hydroxyphenyl-tethered activated alkenes, and an auto-tandem vinylogous addition, unusual central-carbon Tsuji-Trost alkylation, protonation and β-H elimination process is followed to furnish fused and spirocyclic frameworks with high structural complexity.
View Article and Find Full Text PDFIn this review we have compiled multicomponent reactions (MCRs) that produce cyclic structures. We have covered articles reported since 2019 to showcase the recent advances in this area. In contrast to other available reviews on this topic, we focus specifically on MCRs with strong prospects in medicinal chemistry.
View Article and Find Full Text PDFBiotechnol Notes
December 2024
Centre for Molecular Biology, Central University of Jammu, Rahya Suchani (Bagla), Jammu & Kashmir, India.
The amidases (EC 3.5.1.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
January 2025
Jain University - Ramanagara Campus, Centre for Nano and Material Sciences, Jakkasandra Post Kanakapura Taluk, Ramanagara-562112, Bangalore, 562112, Bangalore, INDIA.
The development of a metallic copper-based catalyst system remains a significant challenge. Herein, we report the synthesis of highly stable, active, and reusable Cu0 catalyst for the carboboration of alkynes using carbon electrophiles and bis(pinacolato)diboron (B2pin2) as chemical feedstocks to afford di- and trisubstituted vinylboronate esters in a regio- and stereoselective manner with appreciable turnover number (TON) of up to 2535 under mild reaction conditions. This three-component coupling reaction works well with a variety of substituted electrophiles and alkynes with broad functional group tolerance.
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