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Coordination studies of new lutidine-derived hybrid NHC/phosphine ligands (CNP) to Pd and Ir have been performed. Treatment of the square-planar [Pd(CNP)Cl](AgCl) complex 2a with KHMDS produces the selective deprotonation at the CHP arm of the pincer to yield the pyridine-dearomatised complex 3a. A series of cationic [Ir(CNP)(cod)] complexes 4 has been prepared by reaction of the imidazolium salts 1 with Ir(acac)(cod). These derivatives exhibit in the solid state, and in solution, a distorted trigonal bipyramidal structure in which the CNP ligands adopt an unusual C-N-P coordination mode. Reactions of complexes 4 with CO and H yield the carbonyl species 5a(Cl) and 6a(Cl), and the dihydrido derivatives 7, respectively. Furthermore, upon reaction of complex 4b(Br) with base, selective deprotonation at the methylene CHP arms is observed. The, thus formed, deprotonated Ir complex 8b reacts with H in a ligand-assisted process leading to the trihydrido complex 9b, which can also be obtained by reaction of 7b(Cl) with H in the presence of KOBu. Finally, the catalytic activity of Ir-CNP complexes in the hydrogenation of ketones has been briefly assessed.
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http://dx.doi.org/10.1039/c6dt03652j | DOI Listing |
J Inorg Biochem
September 2025
State Key Laboratory for the Chemistry and Molecular Engineering of Medicinal Resources, School of Chemistry and Pharmacy, Guangxi Normal University, 15 Yucai Road, Guilin 541004, PR China. Electronic address:
This study reports the synthesis and antitumor evaluation of six novel dinuclear calcium(II) complexes with the general formula [Ca(μ-O)(QM)(QH)], designated as CaQ1 through CaQ6. These complexes incorporate various deprotonated 8-hydroxyquinoline ligands (H-QM-H-QM) and 1,10-phenanthroline derivatives (QH), synthesized using Ca(NO)·4HO. The specific compositions are as follows: CaQ1: H-QM = 5,7-dibromo-8-hydroxyquinoline (x = 1), QH = bathophenanthroline; CaQ2: H-QM = 5,7-dichloro-8-quinolinol (x = 2), QH = bathophenanthroline; CaQ3: H-QM = 5,7-diiodo-8-hydroxyquinoline (x = 3), QH = 1,10-phenanthroline; CaQ4: H-QM = 5,7-dichloro-8-quinolinol (x = 2), QH = 1,10-phenanthroline; CaQ5: H-QM = clioquinol (x = 4), QH = 1,10-phenanthroline; CaQ6: H-QM = 5,7-dibromo-8-hydroxyquinoline (x = 1), QH = 1,10-phenanthroline.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, 100190, P.R. China.
Biological ion channels can regulate finely the ion transmembrane permeation, with superhigh ion selectivity and on-off ion flux in response to external stimuli, for signal transduction and energy conversion. However, fabricating smart artificial nanochannels with analogous functions remain challenging by single design of structure or charge property. In vivo, function basis of pH-gated TWIK-related acid-sensitive K channel 2 (TASK2) channels is attributed to synergy control of geometrical conformation and surface potential for filter gates.
View Article and Find Full Text PDFChem Commun (Camb)
August 2025
Department of Chemistry, University of Toronto, 80 St. George St, Toronto, ON, M5S3H6, Canada.
The diphenylphosphirenium salts of the form [PhPC(R)C(H)][AlCl] are readily generated and select examples react with secondary phosphines, RPH, to give dissymmetric bidentate phosphonium salts, [PhPC(R)C(H)P(R')H][AlCl]. While these reactions work well for sterically encumbered combinations of the phosphirenium cations and secondary phosphines (R = Bu, Cy, Mes), less encumbered combinations provide a mixture of products arising from alkyne displacement. As expected the protonated bis-phosphine salts are easily deprotonated, demonstrating easy access to a rare class of dissymmetric bidentate phosphine ligands.
View Article and Find Full Text PDFAcc Chem Res
August 2025
Department of Chemistry, The Scripps Research Institute, 10550 N. Torrey Pines Rd., La Jolla, California 92037, United States.
ConspectusFunctionalization of carbon-hydrogen (C-H) bonds has emerged as a powerful strategy in modern organic synthesis, offering efficient routes to build molecular complexity from simple and abundant substrates. Among various transition-metal catalysts, palladium(II) complexes have proven particularly versatile for C-H activation, owing to the diverse reactivity of carbon-palladium bonds. To advance this approach, the discovery of ligands that can accelerate C-H activation as well as subsequent steps in the catalytic cycle is the pivotal driving force.
View Article and Find Full Text PDFDalton Trans
August 2025
Guangxi Key Laboratory of Agricultural Resources Chemistry and Biotechnology, College of Chemistry and Food Science, Yulin Normal University, 1303 Jiaoyudong Road, Yulin 537000, PR China.
To develop novel calcium(II) coordination compounds aimed at overcoming cisplatin (RiPt) resistance, we synthesized three dinuclear calcium(II) complexes: [Ca(μ-O)(dhg1)(CP)] (CaL1), [Ca(μ-O)(dhg2)(CP)] (CaL2), and [Ca(μ-O)(dhg3)(CP)] (CaL3). These contain four deprotonated 5,7-dichloro-8-quinolinol (H-dhg1), clioquinol (H-dhg2), or 5,7-dibromo-8-hydroxyquinoline (H-dhg3) ligands, respectively, and two 5-chloro-1,10-phenanthroline (CP) ligands. cytotoxicity studies of CaL1-CaL3 against cisplatin-resistant ovarian SK-OV-3/DDP (RiSK3) cancer cells and healthy (HL-7702) cells revealed promising selective cytotoxicity toward RiSK3 cells with IC values of 0.
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