4.7 Article

Formation of Iridium(III) and Rhodium(III) Amine, Imine, and Amido Complexes Based on Pyridine-Amine Ligands: Structural Diversity Arising from Reaction Conditions, Substituent Variation, and Metal Centers

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INORGANIC CHEMISTRY
卷 61, 期 26, 页码 10051-10065

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AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.2c00984

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资金

  1. Young Talents Invitation Program of Shandong Provincial Colleges and Universities
  2. Taishan Scholars Program
  3. National Natural Science Foundation of China [21901140]
  4. Key Laboratory of Polymeric Composite & Functional Materials of Ministry of Education [PCFM-2021A01]
  5. Natural Science Foundation of Shandong Province [ZR2019BB078]

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In this study, we investigated the coordination modes of half-sandwich iridium(III) and rhodium(III) complexes based on pyridine-amine ligands. By varying the reaction conditions and the structure of the metal and ligand, we obtained different coordination modes. We found that reaction in the presence of oxygen yielded oxidized pyridyl-imine complexes, and the introduction of bulky groups led to the formation of stable 16-electron pyridyl-amido complexes. The stability in aqueous solution and cytotoxicity towards human cancer cells were also evaluated.
Herein, we present the different coordination modes of half-sandwich iridium(III) and rhodium(III) complexes based on pyridine-amine ligands. The pyridyl-amine iridium(III) and rhodium(III) complexes, the corresponding oxidation pyridyl-imine products, and 16-electron pyridyl-amido complexes can be obtained through the change in reaction conditions (nitrogen/adventitious oxygen atmosphere, reaction time, and solvents) and structural variations in the metal and ligand. Overall, the reaction of pyridine-amine ligands with [(eta(5)-C-5(CH3)(5))MCl2](2) (M = Ir or Rh) in the presence of adventitious oxygen afforded the oxidized pyridyl-imine complexes. The possible mechanism for the oxidation of iridium(III) and rhodium(III) amine complexes was confirmed by the detection of the byproduct hydrogen peroxide. Moreover, the formation of pyridyl-amine complexes was favored when nonpolar solvent CH2Cl2 was used instead of CH3OH. The rarely reported complex with [(eta(5)-Cp*)IrCl3] anions can also be obtained without the addition of NH4PF6. The introduction of the sterically bulky i-Bu group on the bridge carbon of the ligand led to the formation of stable 16-electron pyridyl-amido complexes. The pyridyl-amine iridium(III) and rhodium(III) complexes were also synthesized under a N-2 atmosphere, and no H2O2 was detected in the whole process. In particular, the aqueous solution stability and in vitro cytotoxicity toward A549 and HeLa human cancer cells of these complexes were also evaluated. No obvious selectivity was observed for cancer cells versus normal cells with these complexes. Notably, the represented complex 5a can promote an increase in the reactive oxygen species level and induce cell death via apoptosis.

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