Literature DB >> 21678919

Electronic structure of 2,2'-bipyridine organotransition-metal complexes. Establishing the ligand oxidation level by density functional theoretical calculations.

Christopher C Scarborough1, Karl Wieghardt.   

Abstract

A density functional theoretical (DFT) study (B3LYP) has been carried out on 20 organometallic complexes containing η(5)- and/or η(3)-coordinated cyclopentadienyl anions (Cp(-)) and 2,2'-bipyridine (bpy) ligand(s) at varying oxidation levels, i.e., as the neutral ligand (bpy(0)), as the π-radical monoanion (bpy(•-))(-), or as the diamagnetic dianion (bpy(2-))(2-). The molecular and electronic structures of these species in their ground states and, in some cases, their first excited states have been calculated using broken-symmetry methodology. The results are compared with experimental structural and spectroscopic data (where available) in order to validate the DFT computational approach. The following electron-transfer series and complexes have been studied: [(Cp)(2)V(bpy)](0,+,2+) (1-3), [(Cp)(2)Ti(bpy)](-,0,+,2+) (4-7), [(Cp)(2)Ti(biquinoline)](0,+) (8 and 9), [(Cp*)(2)Ti(bpy)](0) (10) (Cp* = pentamethylcyclopentadienyl anion), [Cp*Co(bpy)](0,+) (11 and 12), [Cp*Co(bpy)Cl](+,0) (13 and 14), [Fe(toluene)(bpy)](0) (15), [Cp*Ru(bpy)](-) (16), [(Cp)(2)Zr(bpy)](0) (17), and [Mn(CO)(3)(bpy)](-) (18). In order to test the predictive power of our computations, we have also calculated the molecular and electronic structures of two complexes, A and B, namely, the diamagnetic dimer [Cp*Sc(bpy)(μ-Cl)](2) (A) and the paramagnetic (at 25 °C) mononuclear species [(η(5)-C(5)H(4)(CH(2))(2)N(CH(3))(2))Sc((m)bpy)(2)] (B). The crystallographically observed intramolecular π-π interaction of two N,N'-coordinated π-radical anions in A leading to an S = 0 ground state is reliably reproduced. Similarly, the small singlet-triplet gap of ~600 cm(-1) between two antiferromagnetically coupled (bpy(•-))(-) ligands in B, two ferromagnetically coupled radical anions in the triplet excited state of B, and the structures of A and B is reproduced. Therefore, we are confident that we can present computationally obtained, detailed electronic structures for complexes 1-18. We show that N,N'-coordinated neutral bpy(0) ligands behave as very weak π acceptors (if at all), whereas the (bpy(2-))(2-) dianions are strong π-donor ligands.

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Year:  2011        PMID: 21678919     DOI: 10.1021/ic2005419

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


  14 in total

1.  Alkali Cation Effects on Redox-Active Formazanate Ligands in Iron Chemistry.

Authors:  Daniel L J Broere; Brandon Q Mercado; Eckhard Bill; Kyle M Lancaster; Stephen Sproules; Patrick L Holland
Journal:  Inorg Chem       Date:  2018-04-09       Impact factor: 5.165

2.  Geometric and redox flexibility of pyridine as a redox-active ligand that can reversibly accept one or two electrons.

Authors:  Richard A Lewis; K Cory MacLeod; Brandon Q Mercado; Patrick L Holland
Journal:  Chem Commun (Camb)       Date:  2014-10-04       Impact factor: 6.222

3.  C-H and C-N Activation at Redox-Active Pyridine Complexes of Iron.

Authors:  K Cory MacLeod; Richard A Lewis; Daniel E DeRosha; Brandon Q Mercado; Patrick L Holland
Journal:  Angew Chem Int Ed Engl       Date:  2016-12-21       Impact factor: 15.336

4.  Expanding the allyl analogy: accessing η3-P,B,P diphosphinoborane complexes of group 10.

Authors:  Marcus W Drover; Jonas C Peters
Journal:  Dalton Trans       Date:  2018-03-12       Impact factor: 4.390

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.  Recent Developments in Hydrogen Evolving Molecular Cobalt(II)-Polypyridyl Catalysts.

Authors:  N Queyriaux; R T Jane; J Massin; V Artero; M Chavarot-Kerlidou
Journal:  Coord Chem Rev       Date:  2015-12-01       Impact factor: 22.315

7.  Tuning the Stability of Pd(IV) Intermediates Using a Redox Non-innocent Ligand Combined with an Organolanthanide Fragment.

Authors:  Violaine Goudy; Arnaud Jaoul; Marie Cordier; Carine Clavaguéra; Grégory Nocton
Journal:  J Am Chem Soc       Date:  2017-07-30       Impact factor: 15.419

8.  Bioinspired design of redox-active ligands for multielectron catalysis: effects of positioning pyrazine reservoirs on cobalt for electro- and photocatalytic generation of hydrogen from water.

Authors:  Jonah W Jurss; Rony S Khnayzer; Julien A Panetier; Karim A El Roz; Eva M Nichols; Martin Head-Gordon; Jeffrey R Long; Felix N Castellano; Christopher J Chang
Journal:  Chem Sci       Date:  2015-06-09       Impact factor: 9.825

9.  Emergence of the structure-directing role of f-orbital overlap-driven covalency.

Authors:  Erli Lu; Saira Sajjad; Victoria E J Berryman; Ashley J Wooles; Nikolas Kaltsoyannis; Stephen T Liddle
Journal:  Nat Commun       Date:  2019-02-07       Impact factor: 14.919

10.  Cross-electrophile coupling: principles of reactivity and selectivity.

Authors:  Daniel A Everson; Daniel J Weix
Journal:  J Org Chem       Date:  2014-05-15       Impact factor: 4.354

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