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Anchoring homolytic and heterolytic bond functionalisation at low-coordinate coinage metal centres is important due to their potential use as active catalysts in organic transformations. In the realm of carbene-stabilised coinage metal chemistry, heteroatom functionalised coinage metal precursors synthesised from such bond activations have long been explored. Interestingly, -heterocyclic silylene, being an equally potent neutral donor ligand, has not been used for the same. Of note, carbene-stabilised heteroatom functionalised coinage metal precursors are vastly developed with copper centres only, while silver has been underexplored. This work reports the isolation of a variety of [PhC{N( Bu)}SiN(SiMe)] (1) coordinated aryl-copper(i) and aryl-silver(i) complexes (2-8). We have also examined the reactivity pattern of organo-copper with differently substituted silylenes (9-11). These complexes were then utilised to cleave various homolytic and heterolytic bonds to access silylene-coordinated heteroatom functionalised coinage metal complexes (12-24). We have shown the reaction of reactive aryl-coinage metal precursors towards homolytic bonds, having B-B and Se-Se bonds, which led to the formation of an NHSi-supported dimeric μ-boryl bound Cu(i) complex (12) and a new class of unprecedented NHSi-supported coinage metal-selenogenolates (14-16). These aryl-coinage metal precursors also smoothly afforded several elusive NHSi-copper and silver amides (17-22) N-H bond cleavage. A heterolytic cleavage of the P-Si bond resulted in the formation of NHSi stabilised copper and silver phosphide complexes (23 and 24), among which the latter is the first precedent of the dimeric Ag-phosphide complex. Lastly, we have utilised NHSi → copper-aryl complexes as aryl transfer reagents in C-C coupling reactions, which led to the formation of products in excellent yields with a high TON. The analogous silver complex was employed in the three-component α-aminonitrile synthesis efficiently. Our report establishes NHSi coordinated aryl copper and silver complexes as a perfect and robust platform for accessing a diverse array of reactive coinage metal precursors that were hitherto unknown.
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http://dx.doi.org/10.1039/d5sc00879d | DOI Listing |
Precis Chem
August 2025
Department of Chemistry, University of Florida, Gainesville, Florida 32611, United States.
Platinum is a cornerstone catalyst for various chemical and electrochemical transformations. Atomically precise platinum nanoclusters, located at the transition stage between smaller platinum-ligand coordination molecules (<∼1 nm) and larger platinum colloidal nanoparticles (>∼3 nm), can combine the advantages of both homogeneous and heterogeneous catalysts, serving as model systems for understanding catalytic processes. However, compared to significant advances in coinage metal nanoclusters, atomically precise platinum nanoclusters remain largely unexplored.
View Article and Find Full Text PDFJ Am Chem Soc
August 2025
Key Lab of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, State Key Lab of Crystal Materials, Shandong University, Ji'nan 250100, People's Republic of China.
The pervasive presence of toroidal architectures across scales, from molecular assemblies to cosmic formations, reveals a universal design principle that integrates aesthetic symmetry with functional topology in nature. Yet, constructing such hierarchical toroidal organization at the nanoscale, particularly for metal nanoclusters, remains an unmet challenge. We present an unprecedented wheel-shaped silver nanocluster, [(VO⊂VO)@Ag(BuPhC≡C)(SO)(DMF)] (), encapsulating an unparalleled hierarchical toroidal [VO⊂VO] polyoxovanadate (POV).
View Article and Find Full Text PDFOrg Lett
September 2025
Instituto de Química Orgánica General (IQOG), Consejo Superior de Investigaciones Científicas (CSIC), Juan de la Cierva 3, 28006 Madrid, Spain.
Herein, we disclose metal-catalyzed tunable annulations of uncharted alkyne-tethered hydrazides for the divergent preparation of diazacyclic frameworks. Cationic gold facilitates the O-cyclization, providing valuable [1,3,4]oxadiazine scaffolds with total selectivity, whereas silver catalysis promotes controlled N-cyclization to access -acyl pyrazoles. Furthermore, density-functional-theory-based theoretical investigations support two different pathways (ionic versus radical) operating in the catalytic heterocyclization reaction of the same -propargyl hydrazide substrate.
View Article and Find Full Text PDFChem Sci
August 2025
Institute of Inorganic Chemistry (AOC), Karlsruhe Institute of Technology (KIT) Kaiserstr. 12 Karlsruhe 76131 Germany
Recently, we discovered that silaiminyl-silylene, [LSi-Si(NDipp)L] (L = PhC(NBu), Dipp = 2,6-diisopropylphenyl), can be converted from a mono-silylene to bis-silylene by using Lewis acids. This revelation led us to further use silaiminyl-silylene as a silylene-based ligand, which can coordinate to one metal center and later, on demand, release one more silylene center to coordinate to a second metal. Furthermore, an insight into the mechanism of this unusual rearrangement reaction is presented.
View Article and Find Full Text PDFDalton Trans
September 2025
Institute of Inorganic Chemistry, Karlsruhe Institute of Technology, Engesserstr. 15, 76131 Karlsruhe, Germany.
The syntheses of luminescent heterobimetallic ionic complexes based on the bis(phosphine)-functionalized β-diketiminate ligand [HC{(CH)C}{(-[P(CH)]CH)N}] (PNac) are reported. This orthogonal ligand is characterized by its PNNP pocket, which contains both hard and soft donor sites and therefore enables the selective coordination of two different metal ions in spatial proximity, significantly changing the photoluminescent properties. Salt elimination reaction of [PNacK] with zinc chloride yields the monometallic complex [PNacZnCl], in which the zinc ion is square-pyramidally coordinated within the PNNP pocket.
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