Literature DB >> 15701024

IrII(ethene): metal or carbon radical?

Dennis G H Hetterscheid1, Jasper Kaiser, Eduard Reijerse, Theo P J Peters, Simone Thewissen, Arno N J Blok, Jan M M Smits, René de Gelder, Bas de Bruin.   

Abstract

One-electron oxidation of [(Me(n)tpa)Ir(I)(ethene)]+ complexes (Me(3)tpa = N,N,N-tri(6-methyl-2-pyridylmethyl)amine; Me(2)tpa = N-(2-pyridylmethyl)-N,N,-di[(6-methyl-2-pyridyl)methyl]-amine) results in relatively stable, five-coordinate Ir(II)-olefin species [(Me(n)tpa)Ir(II)(ethene)](2+) (1(2+): n = 3; 2(2+): n = 2). These contain a "vacant site" at iridium and a "non-innocent" ethene fragment, allowing radical type addition reactions at both the metal and the ethene ligand. The balance between metal- and ligand-centered radical behavior is influenced by the donor capacity of the solvent. In weakly coordinating solvents, 1(2+) and 2(2+) behave as moderately reactive metallo-radicals. Radical coupling of 1(2+) with NO in acetone occurs at the metal, resulting in dissociation of ethene and formation of the stable nitrosyl complex [(Me(3)tpa)Ir(NO)](2+) (6(2+)). In the coordinating solvent MeCN, 1(2+) generates more reactive radicals; [(Me(3)tpa)Ir(MeCN)(ethene)](2+) (9(2+)) by MeCN coordination, and [(Me(3)tpa)Ir(II)(MeCN)](2+) (10(2+)) by substitution of MeCN for ethene. Complex 10(2+) is a metallo-radical, like 1(2+) but more reactive. DFT calculations indicate that 9(2+) is intermediate between the slipped-olefin Ir(II)(CH(2)=CH(2)) and ethyl radical Ir(III)-CH(2)-CH(2). resonance structures, of which the latter prevails. The ethyl radical character of 9(2+) allows radical type addition reactions at the ethene ligand. Complex 2(2+) behaves similarly in MeCN. In the absence of further reagents, 1(2+) and 2(2+) convert to the ethylene bridged species [(Me(n)tpa)(MeCN)Ir(III)(mu(2)-C(2)H(4))Ir(III)(MeCN)(Me(3)tpa)](4+) (n = 3: 3(4+); n = 2: 4(4+)) in MeCN. In the presence of TEMPO (2,2,6,6-tetramethyl-1-piperidinyloxo), formation of 3(4+) from 1(2+) in MeCN is completely suppressed and only [(Me(3)tpa)Ir(III)(TEMPO(-))(MeCN)](2+) (7(2+)) is formed. This is thought to proceed via radical coupling of TEMPO at the metal center of 10(2+). In the presence of water, hydrolysis of the coordinated acetonitrile fragment of 7(2+) results in the acetamido complex [(Me(3)tpa)Ir(III)(NHC(O)CH(3)))(TEMPOH)](2+) (8(2+)).

Entities:  

Year:  2005        PMID: 15701024     DOI: 10.1021/ja0439470

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Ligand radical localization in a nonsymmetric one-electron oxidized Ni(II) bis-phenoxide complex.

Authors:  Tim Storr; Pratik Verma; Yuichi Shimazaki; Erik C Wasinger; T Daniel P Stack
Journal:  Chemistry       Date:  2010-08-09       Impact factor: 5.236

2.  Structures, metal ion affinities, and fluorescence properties of soluble derivatives of tris((6-phenyl-2-pyridyl)methyl)amine.

Authors:  Jian Liang; Jing Zhang; Lei Zhu; Alexander Duarandin; Victor G Young; Nicholas Geacintov; James W Canary
Journal:  Inorg Chem       Date:  2009-12-07       Impact factor: 5.165

3.  Insights into the carbene-initiated aggregation of [Fe(cot)(2)].

Authors:  Vincent Lavallo; Amer El-Batta; Guy Bertrand; Robert H Grubbs
Journal:  Angew Chem Int Ed Engl       Date:  2011-01-03       Impact factor: 15.336

4.  Characterization of Reactive Organometallic Species via MicroED.

Authors:  Christopher G Jones; Matthew Asay; Lee Joon Kim; Jack F Kleinsasser; Ambarneil Saha; Tyler J Fulton; Kevin R Berkley; Duilio Cascio; Andrey G Malyutin; Matthew P Conley; Brian M Stoltz; Vincent Lavallo; José A Rodríguez; Hosea M Nelson
Journal:  ACS Cent Sci       Date:  2019-09-06       Impact factor: 14.553

5.  Metalloradical Reactivity of RuI and Ru0 Stabilized by an Indole-Based Tripodal Tetraphosphine Ligand.

Authors:  Fenna F van de Watering; Jarl Ivar van der Vlugt; Wojciech I Dzik; Bas de Bruin; Joost N H Reek
Journal:  Chemistry       Date:  2017-08-30       Impact factor: 5.236

  5 in total

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