Literature DB >> 12079463

Tuning the electronic structure of octahedral iron complexes [FeL(X)] (L = 1-alkyl-4,7-bis(4-tert-butyl-2-mercaptobenzyl)-1,4,7-triazacyclononane, X = Cl, CH(3)O, CN, NO). The S = 1/2 <==>3/2 Spin equilibrium of [FeL(Pr)(NO)].

Ming Li1, Didier Bonnet, Eckhard Bill, Frank Neese, Thomas Weyhermüller, Nicole Blum, Dieter Sellmann, Karl Wieghardt.   

Abstract

Two new pentadentate, pendent arm macrocyclic ligands of the type 1-alkyl-4,7-bis(4-tert-butyl-2-mercaptobenzyl)-1,4,7-triazacyclononane where alkyl represents an isopropyl, (L(Pr))(2-), or an ethyl group, (L(Et))(2-), have been synthesized. It is shown that they bind strongly to ferric ions generating six-coordinate species of the type [Fe(L(alk))X]. The ground state of these complexes is governed by the nature of the sixth ligand, X: [Fe(III)(L(Et))Cl] (2) possesses an S = 5/2 ground state as do [Fe(III)(L(Et))(OCH(3))] (3) and [Fe(III)(L(Pr))(OCH(3))] (4). In contrast, the cyano complexes [Fe(III)(L(Et))(CN)] (5) and [Fe(III)(L(Pr))(CN)] (6) are low spin ferric species (S = 1/2). The octahedral [FeNO](7) nitrosyl complex [Fe(L(Pr))(NO)] (7) displays spin equilibrium behavior S = 1/2<==>S = (3)/(2) in the solid state. Complexes [Zn(L(Pr))] (1), 4.CH(3)OH, 5.0.5toluene.CH(2)Cl(2), and 7.2.5CH(2)Cl(2) have been structurally characterized by low-temperature (100 K) X-ray crystallography. All iron complexes have been carefully studied by zero- and applied-field Mössbauer spectroscopy. In addition, Sellmann's complexes [Fe(pyS(4))(NO)](0/1+) and [Fe(pyS(4))X] (X = PR(3), CO, SR(2)) have been studied by EPR and Mössbauer spectroscopies and DFT calculations (pyS(4) = 2,6-bis(2-mercaptophenylthiomethyl)pyridine(2-)). It is concluded that the electronic structure of 7 with an S = 1/2 ground state is low spin ferrous (S(Fe) = 0) with a coordinated neutral NO radical (Fe(II)-NO) whereas the S = 3/2 state corresponds to a high spin ferric (S(Fe) = 5/2) antiferromagnetically coupled to an NO(-) anion (S = 1). The S = 1/2<==>S = 3/2 equilibrium is then that of valence tautomers rather than that of a simple high spin<==>low spin crossover.

Entities:  

Year:  2002        PMID: 12079463     DOI: 10.1021/ic011243a

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


  17 in total

1.  The "Gln-Type" Thiol Dioxygenase from Azotobacter vinelandii is a 3-Mercaptopropionic Acid Dioxygenase.

Authors:  Brad S Pierce; Bishnu P Subedi; Sinjinee Sardar; Joshua K Crowell
Journal:  Biochemistry       Date:  2015-12-17       Impact factor: 3.162

2.  Photoinitiated Reactivity of a Thiolate-Ligated, Spin-Crossover Nonheme {FeNO}(7) Complex with Dioxygen.

Authors:  Alison C McQuilken; Hirotoshi Matsumura; Maximilian Dürr; Alex M Confer; John P Sheckelton; Maxime A Siegler; Tyrel M McQueen; Ivana Ivanović-Burmazović; Pierre Moënne-Loccoz; David P Goldberg
Journal:  J Am Chem Soc       Date:  2016-02-26       Impact factor: 15.419

3.  Spin coupling in Roussin's red and black salts.

Authors:  Kathrin H Hopmann; Louis Noodleman; Abhik Ghosh
Journal:  Chemistry       Date:  2010-09-10       Impact factor: 5.236

4.  Influence of thiolate ligands on reductive N-O bond activation. Probing the O2(-) binding site of a biomimetic superoxide reductase analogue and examining the proton-dependent reduction of nitrite.

Authors:  Gloria Villar-Acevedo; Elaine Nam; Sarah Fitch; Jason Benedict; John Freudenthal; Werner Kaminsky; Julie A Kovacs
Journal:  J Am Chem Soc       Date:  2011-01-05       Impact factor: 15.419

5.  Spectroscopic and computational characterization of the NO adduct of substrate-bound Fe(II) cysteine dioxygenase: insights into the mechanism of O2 activation.

Authors:  Elizabeth J Blaesi; Jessica D Gardner; Brian G Fox; Thomas C Brunold
Journal:  Biochemistry       Date:  2013-08-23       Impact factor: 3.162

6.  Spectroscopic and computational study of a nonheme iron nitrosyl center in a biosynthetic model of nitric oxide reductase.

Authors:  Saumen Chakraborty; Julian Reed; Matthew Ross; Mark J Nilges; Igor D Petrik; Soumya Ghosh; Sharon Hammes-Schiffer; J Timothy Sage; Yong Zhang; Charles E Schulz; Yi Lu
Journal:  Angew Chem Int Ed Engl       Date:  2014-01-31       Impact factor: 15.336

7.  The prediction of Fe Mössbauer parameters by the density functional theory: a benchmark study.

Authors:  Arteum D Bochevarov; Richard A Friesner; Stephen J Lippard
Journal:  J Chem Theory Comput       Date:  2010-11-09       Impact factor: 6.006

8.  Preparation of non-heme {FeNO}7 models of cysteine dioxygenase: sulfur versus nitrogen ligation and photorelease of nitric oxide.

Authors:  Alison C McQuilken; Yang Ha; Kyle D Sutherlin; Maxime A Siegler; Keith O Hodgson; Britt Hedman; Edward I Solomon; Guy N L Jameson; David P Goldberg
Journal:  J Am Chem Soc       Date:  2013-09-17       Impact factor: 15.419

9.  Variable pi-bonding in iron(II) porphyrinates with nitrite, CO, and tert-butyl isocyanide: characterization of [Fe(TpivPP)(NO2)(CO)]-.

Authors:  Habib Nasri; Mary K Ellison; Maoyu Shang; Charles E Schulz; W Robert Scheidt
Journal:  Inorg Chem       Date:  2004-05-03       Impact factor: 5.165

10.  Density functional theory calculations on Mössbauer parameters of nonheme iron nitrosyls.

Authors:  Kathrin H Hopmann; Abhik Ghosh; Louis Noodleman
Journal:  Inorg Chem       Date:  2009-10-05       Impact factor: 5.165

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