α-Tetrasubstituted Aldehydes through Electronic and Strain-Controlled Branch-Selective Stereoselective Hydroformylation.

J Org Chem

Department of Chemistry , University of Wisconsin-Madison , 1101 University Avenue, Madison , Wisconsin 53706 , United States.

Published: September 2018

Hydroformylation utilizes dihydrogen, carbon monoxide, and a catalyst to transform alkenes into aldehydes. This work applies chiral bisdiazaphospholane (BDP)- and bisphospholanoethane-ligated rhodium complexes to the hydroformylation of a variety of alkenes to produce chiral tetrasubstituted aldehydes. 1,1'-Disubstituted acrylates bearing electron-withdrawing substituents undergo hydroformylation under mild conditions (1 mol % of catalyst/BDP ligand, 150 psig gas, 60 °C) with high conversions and yields of tetrasubstituted aldehydes (e.g., 13:1 regioselectivity, 85% ee, and <1% hydrogenation for 1-fluoromethyl acrylate). The scope also encompasses both acyclic 1,1'-disubstituted and trisubstituted, electron-poor alkenes as well as di- and trisubstituted alkenes composed of small rings with exocyclic and endocyclic unsaturation. For example, 1-methylene-β-lactam furnished the tetrasubstituted aldehyde with 98% selectivity and up to 83% ee. Notably, chiral trisubstituted bicyclic methyleneaziridines are transformed with >99% regioselectivity and >19:1 diastereoselectivity to tetrasubstituted aldehydes at rates >50 catalyst turnovers/hour. NMR studies of the noncatalytic reaction of HRh(BDP)(CO) with methyl 1-fluoroacrylate enable interception of tertiary alkylrhodium intermediates, demonstrating migratory insertion to acyl species is slower than formation of secondary and primary alkylrhodium intermediates. Overall, these investigations reveal how the interplay of sterics, electronics, and ring strain are harnessed to provide access to valuable α-tetrasubstituted aldehyde synthetic building blocks by promoting branched-selective hydroformylation.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6816342PMC
http://dx.doi.org/10.1021/acs.joc.8b01431DOI Listing

Publication Analysis

Top Keywords

tetrasubstituted aldehydes
8
α-tetrasubstituted aldehydes
4
aldehydes electronic
4
electronic strain-controlled
4
strain-controlled branch-selective
4
branch-selective stereoselective
4
hydroformylation
4
stereoselective hydroformylation
4
hydroformylation hydroformylation
4
hydroformylation utilizes
4

Similar Publications

Chiral allylamines are important structural components in natural products, pharmaceuticals, and chiral catalysts. Herein, we report a cobalt-catalyzed enantioselective reductive coupling of imines with internal alkynes to synthesize chiral allylamines. The reaction is catalyzed by a cobalt complex derived from commercially available bisphosphine ligand utilizing zinc as the electron donor.

View Article and Find Full Text PDF

Introduction: An efficient and four-component one-pot facile synthesis of tetra-substituted imidazole is achieved by cyclo-condensation reaction of benzil with subsequent successive substitution of aromatic aldehydes, ester substituted amine and ammonium acetate via refluxing the mixture for almost two hours at 140°C.

Method: The ending point of the understudy reaction was examined by TLC after regular intervals. Synthesized 1,2,4-tetrasubstituted imidazoles were characterized by physical data and the structural features were analyzed using spectroscopic techniques such as FTIR, NMR and elemental analysis.

View Article and Find Full Text PDF

Base-Promoted One-Pot Four-Component Domino Strategy Involving Aldehydes and Ketones to Access Multifunctionalized Dihydropyridinones.

J Org Chem

November 2024

State Key Laboratory of Chemo/Biosensing and Chemometrics, Advanced Catalytic Engineering Research Center of the Ministry of Education, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P. R. China.

The synthesis of multifunctionalized dihydropyridinones from aldehydes and ketones involves at least a three-step process, making route shortening a challenging task, especially in achieving a one-pot four-component synthesis via aldehydes and ketones precondensation. Herein, we discovered a [1 + 2 + 1 + 2] four-component domino cyclization reaction, a novel concept in 4CRs with commercially available ketones and aldehydes, which by initially combining aldehydes and ketones with Meldrum's acid and ammonium acetate (NHOAc), respectively, they give dihydropyridones (>110 examples). This transformation features inexpensive additives and readily available starting materials, making it appropriate for rapid access to relevant pharmaceutical molecules containing dihydropyridinone-derived heterocycles.

View Article and Find Full Text PDF

Catalytic Asymmetric Barbier Reaction of Ketones with Unactivated Alkyl Electrophiles.

J Am Chem Soc

October 2024

Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, School of Chemistry and Molecular Engineering, East China University of Science & Technology, 130 Meilong Road, Shanghai 200237, China.

Article Synopsis
  • The Barbier reaction is a method for adding aldehydes or ketones to organic electrophiles, forming carbon-carbon bonds without needing moisture-sensitive reagents.* -
  • This study introduces a new photoredox-assisted cobalt-catalyzed version of the Barbier reaction, addressing challenges in creating complex chiral tertiary alcohols using unactivated alkyl electrophiles.* -
  • The process can use various alkyl halides and redox-active esters, leading to diverse enantioenriched products, and demonstrates its effectiveness by synthesizing a core structure of a recently FDA-approved drug from 2024.*
View Article and Find Full Text PDF

An efficient method for the asymmetric one-pot synthesis of -phenyl thioether-tethered tetrasubstituted chiral 4,5-dihydropyrrole-3-carbaldehydes have been developed using readily available benzothiazolium salts and α,β-unsaturated aldehydes as starting materials in the presence of the chiral organocatalyst ()-diphenylprolinol trimethylsilyl ether. The protocol afforded various functionally enantioenriched chiral tetrasubstituted 4,5-dihydropyrrole-3-carbaldehydes in high yields, with excellent enantio- and diastereoselectivity (≤90% yield, ≤98% ee, and >20 : 1 d.r.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!