Literature DB >> 24884152

Redox chemistry of nickel(II) complexes supported by a series of noninnocent β-diketiminate ligands.

June Takaichi1, Yuma Morimoto, Kei Ohkubo, Chizu Shimokawa, Takayuki Hojo, Seiji Mori, Haruyasu Asahara, Hideki Sugimoto, Nobutaka Fujieda, Nagatoshi Nishiwaki, Shunichi Fukuzumi, Shinobu Itoh.   

Abstract

Nickel complexes of a series of β-diketiminate ligands ((R)L(-), deprotonated form of 2-substituted N-[3-(phenylamino)allylidene]aniline derivatives (R)LH, R = Me, H, Br, CN, and NO2) have been synthesized and structurally characterized. One-electron oxidation of the neutral complexes [Ni(II)((R)L(-))2] by AgSbF6 or [Ru(III)(bpy)3](PF6)3 (bpy = 2,2'-bipyridine) gave the corresponding metastable cationic complexes, which exhibit an EPR spectrum due to a doublet species (S = 1/2) and a characteristic absorption band in near IR region ascribable to a ligand-to-ligand intervalence charge-transfer (LLIVCT) transition. DFT calculations have indicated that the divalent oxidation state of nickel ion (Ni(II)) is retained, whereas one of the β-diketiminate ligands is oxidized to give formally a mixed-valence complex, [Ni(II)((R)L(-))((R)L(•))](+). Thus, the doublet spin state of the oxidized cationic complex can be explained by taking account of the antiferromagnetic interaction between the high-spin nickel(II) ion (S = 1) and the organic radical (S = 1/2) of supporting ligand. A single-crystal structure of one of the cationic complexes (R = H) has been successfully determined to show that both ligands in the cationic complex are structurally equivalent. On the basis of theoretical analysis of the LLIVCT band and DFT calculations as well as the crystal structure, the mixed-valence complexes have been assigned to Robin-Day class III species, where the radical spin is equally delocalized between the two ligands to give the cationic complex, which is best described as [Ni(II)((R)L(0.5•-))2](+). One-electron reduction of the neutral complexes with decamethylcobaltocene gave the anionic complexes when the ligand has the electron-withdrawing substituent (R = CN, NO2, Br). The generated anionic complexes exhibited EPR spectra due to a doublet species (S = 1/2) but showed no LLIVCT band in the near-IR region. Thus, the reduced complexes are best described as the d(9) nickel(I) complexes supported by two anionic β-diketiminate ligands, [Ni(I)((R)L(-))2](-). This conclusion was also supported by DFT calculations. Substituent effects on the electronic structures of the three oxidation states (neutral, cationic, and anionic) of the complexes are systematically evaluated on the basis of DFT calculations.

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Year:  2014        PMID: 24884152     DOI: 10.1021/ic5006693

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  6 in total

1.  Theoretical and experimental studies on three new coordination complexes of Co(II), Ni(II), and Cu(II) with 2,4-dichloro-6-{(E)-[(5-chloro-2 sulfanylphenyl)imino]methyl}phenol Schiff base ligand.

Authors:  Brajendra S Kusmariya; A P Mishra
Journal:  J Mol Model       Date:  2015-10-05       Impact factor: 1.810

2.  Reversible Ligand-Centered Reduction in Low-Coordinate Iron Formazanate Complexes.

Authors:  Daniël L J Broere; Brandon Q Mercado; James T Lukens; Avery C Vilbert; Gourab Banerjee; Hannah M C Lant; Shin Hee Lee; Eckhard Bill; Stephen Sproules; Kyle M Lancaster; Patrick L Holland
Journal:  Chemistry       Date:  2018-06-07       Impact factor: 5.236

3.  Tuning steric and electronic effects in transition-metal β-diketiminate complexes.

Authors:  Chi Chen; Sarina M Bellows; Patrick L Holland
Journal:  Dalton Trans       Date:  2015-08-05       Impact factor: 4.390

4.  [Ni(cod)2][Al(OR(F))4], a Source for Naked Nickel(I) Chemistry.

Authors:  Miriam M Schwab; Daniel Himmel; Sylwia Kacprzak; Daniel Kratzert; Valentin Radtke; Philippe Weis; Kallol Ray; Ernst-Wilhelm Scheidt; Wolfgang Scherer; Bas de Bruin; Stefan Weber; Ingo Krossing
Journal:  Angew Chem Int Ed Engl       Date:  2015-10-13       Impact factor: 15.336

5.  Redox Activity of Noninnocent 2,2'-Bipyridine in Zinc Complexes: An Experimental and Theoretical Study.

Authors:  Bin Li; Blaise L Geoghegan; Christoph Wölper; George E Cutsail; Stephan Schulz
Journal:  ACS Omega       Date:  2021-07-06

6.  Radical-Type Reactivity and Catalysis by Single-Electron Transfer to or from Redox-Active Ligands.

Authors:  Jarl Ivar van der Vlugt
Journal:  Chemistry       Date:  2018-11-26       Impact factor: 5.236

  6 in total

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