Literature DB >> 17263396

New members of a class of iron-thiolate-nitrosyl compounds: trinuclear iron-thiolate-nitrosyl complexes containing Fe(3)S(6) core.

I-Jui Hsu1, Chung-Hung Hsieh, Shyue-Chu Ke, Kuo-An Chiang, Jenn-Min Lee, Jin-Ming Chen, Ling-Yun Jang, Gene-Hsiang Lee, Yu Wang, Wen-Feng Liaw.   

Abstract

The neutral trinuclear iron-thiolate-nitrosyl, [(ON)Fe(mu-S,S-C(6)H(4))](3) (1), and its oxidation product, [(ON)Fe(mu-S,S-C(6)H(4))](3)[PF(6)] (2), were synthesized and characterized by IR, X-ray diffraction, X-ray absorption, electron paramagnetic resonance (EPR), and magnetic measurement. The five-coordinated, square pyramidal geometry around each iron atom in complex 1 remains intact when complex 1 is oxidized to yield complex 2. Magnetic measurements and EPR results show that there is only one unpaired electron in complex 1 (S(total) = 1/2) and no unpaired electron (S(total) = 0) in 2. The detailed geometric comparisons between complexes 1 and 2 provide understanding of the role that the unpaired electron plays in the chemical bonding of this trinuclear complex. Significant shortening of the Fe-Fe, Fe-N, and Fe-S distances around Fe(1) is observed when complex 1 is oxidized to 2. This result implicates that the removal of the unpaired electron does induce the strengthening of the Fe-Fe, Fe-N, and Fe-S bonds in the Fe(1) fragment. A significant shift of the nuNO stretching frequency from 1751 cm(-1) (1) to 1821, 1857 cm(-1) (2) (KBr) also indicates the strengthening of the N-O bonds in complex 2. The EPR, X-ray absorption, magnetic measurements, and molecular orbital calculations lead to the conclusion that the unpaired electron in complex 1 is mainly allocated in the Fe(1) fragment and is best described as {Fe(1)NO}7, so that the unpaired electron is delocalized between Fe and NO via d-pi* orbital interaction; some contributions from [Fe(2)NO] and [Fe(3)NO] as well as the thiolates associated with Fe (1) are also realized. According to MO calculations, the spin density of complex 1 is predominantly located at the Fe atoms with 0.60, -0.15, and 0.25 at Fe(1), Fe(2), and Fe(3), respectively.

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Year:  2007        PMID: 17263396     DOI: 10.1021/ja065401e

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


  5 in total

1.  A new hexanuclear iron-selenium nitrosyl cluster: primary exploration of the preparation methods, structure, and spectroscopic and electrochemical properties.

Authors:  Rongming Wang; Wei Xu; Jian Zhang; Lijuan Li
Journal:  Inorg Chem       Date:  2010-06-07       Impact factor: 5.165

2.  The Preparation, Structural Characteristics, and Physical Chemical Properties of Metal-Nitrosyl Complexes.

Authors:  Lauren R Holloway; Lijuan Li
Journal:  Struct Bond       Date:  2013-05-29       Impact factor: 1.176

3.  Recent Advances in Multinuclear Metal Nitrosyl Complexes.

Authors:  Lijuan Li; Linlin Li
Journal:  Coord Chem Rev       Date:  2015-04-16       Impact factor: 22.315

4.  Ammonia formation by a thiolate-bridged diiron amide complex as a nitrogenase mimic.

Authors:  Yang Li; Ying Li; Baomin Wang; Yi Luo; Dawei Yang; Peng Tong; Jinfeng Zhao; Lun Luo; Yuhan Zhou; Si Chen; Fang Cheng; Jingping Qu
Journal:  Nat Chem       Date:  2013-03-17       Impact factor: 24.427

5.  Electronic and spatial structures of water-soluble dinitrosyl iron complexes with thiol-containing ligands underlying their ability to act as nitric oxide and nitrosonium ion donors.

Authors:  Anatoly F Vanin; Dosymzhan Sh Burbaev
Journal:  J Biophys       Date:  2012-02-14
  5 in total

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