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Buchwald-Hartwig (BH) aminations are crucial for synthesizing arylamine motifs in numerous bioactive molecules and fine chemicals. While homogeneous palladium complexes can be effective catalysts, their high costs and environmental impact motivate the search for alternative approaches. Heterogeneous palladium single-atom catalysts (SAC) offer promising recoverable alternatives in C-C cross-couplings. Yet their use in C-N couplings remains unexplored, and mechanistic insights into amine coupling with aryl halides over solid surfaces that could guide catalyst design are lacking. Here, we demonstrate that palladium atoms coordinated to well-defined heptazinic cavities of graphitic carbon nitride (Pd@CN) deliver practically relevant yields for BH couplings across various aryl halides and amines, exhibiting persistent activity and negligible leaching over several cycles. Notably, Pd@CN shows comparable or superior activity with certain aryl chlorides to bromides, alongside high chemoselectivity for amines over amides. In situ X-ray absorption spectroscopy analyses supported by density functional theory simulations identify the concerted role of the ligand and the CN host in determining the performance, with a Pd(II) nominal oxidation state observed under all coupling conditions. Complementary structural and kinetic studies highlight a distinct reaction mechanism than that typically reported for homogeneous catalysts. These findings offer key insights for designing recyclable SAC for BH coupling, setting the basis for extending the scope toward more complex industrial targets.
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http://dx.doi.org/10.1021/acscatal.4c05134 | DOI Listing |
Org Lett
August 2025
Department of Chemistry, Indian Institute of Technology Hyderabad, Kandi-502 284, Sangareddy, Telangana, India.
Herein we report a practical and highly efficient methodology for the β-selective synthesis of -glycosides via Buchwald-Hartwig coupling. This glycosylation strategy employs glycosyl chloride with different amine aglycones and is catalyzed by an inexpensive copper(I) catalyst under mild, ligand-free conditions. The synthetic applicability is further demonstrated through the gram-scale reaction and the late-stage functionalization of bioactive molecules.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China. Electronic address:
Developing conjugated microporous polymers (CMPs) with enhanced redox activity and extended π-conjugation is essential for advancing high-performance supercapacitors with improved energy density and long-term stability. In this study, we developed a one-pot palladium-catalyzed Buchwald-Hartwig/Suzuki-Miyaura (BHSM) double-coupling strategy to synthesize CMPs (BHSM-CMPs) with high specific capacitance and excellent cycling stability. By employing triaminotriphenylamine, 3,6-dibromophenanthrene-9,10-dione and 3,5-dibromobenzeneboronic acid in various ratios, the BH coupling introduces redox-active amine nitrogen and anthraquinone units to enhance capacity, while the SM coupling forms CC bonds that extend π-conjugation.
View Article and Find Full Text PDFRapid Commun Mass Spectrom
November 2025
Center for Preventive Doping Research, Institute of Biochemistry, German Sport University Cologne, Cologne, Germany.
Rationale: 2-Chloro-4-[[(1R,2R)-2-hydroxy-2-methyl-cyclopentyl]amino]-3-methyl-benzonitrile (LY305) is a transdermal selective androgen receptor modulator (SARM) that has been under development as a potential therapeutic for conditions involving muscle wasting, osteoporosis, or hypogonadism. Due to its proven anabolic effects, its potential (and illicit) use in sport must be taken into consideration, necessitating information on its biotransformation for the implementation of adequate target analytes into routine doping control analytical procedures. In this study, the synthesis of LY305 and in vitro-derived metabolites of the SARM are described.
View Article and Find Full Text PDFChemphyschem
August 2025
Center of Marine Sciences, CCMAR, Gambelas Campus, University of Algarve, 8005-139, Faro, Portugal.
Buchwald-Hartwig reactions have been in the spotlight over the past years due to their usefulness in creating a wide range of chemical skeletons applied in drug discovery. Aminopyrimidines are heterocyclic structures with significant biological relevance and compounds bearing the amino- and diaminopyrimidine motifs have been associated with antiviral, antibacterial, antiparasitic, antifungal, anticancer, and anti-inflammatory properties. Given the notable status of aminopyrimidines in the design of target-specific drug candidates, the synthesis and structure of four aminopyrimidine-arylsulfide conjugates (3, 4, 5, and 6) are reported that are designed to inhibit trypanothione reductase, a key enzyme in the redox pathway of trypanosomatids.
View Article and Find Full Text PDFRSC Adv
July 2025
Department of Chemical Sciences, University of Johannesburg PO Box 524, Auckland Park Johannesburg 2006 South Africa +27 (0)11 559 2819 +27 (0)11 559 2367.
This study sought to synthesize supported palladium nanocatalysts that are, in general, convenient to synthesize, suitable for mild conditions, recyclable, and stable in water. The sol-gel procedure was successfully extended to synthesize mesoporous metal oxides with well-dispersed palladium nanoparticles. The resulting catalysts were extensively characterized using techniques such as TEM, powder XRD, SEM-EDX, thermogravimetric analysis, and BET surface area measurements.
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