Literature DB >> 23777336

Observation of ferromagnetic exchange, spin crossover, reductively induced oxidation, and field-induced slow magnetic relaxation in monomeric cobalt nitroxides.

Ian A Gass1, Subrata Tewary, Ayman Nafady, Nicholas F Chilton, Christopher J Gartshore, Mousa Asadi, David W Lupton, Boujemaa Moubaraki, Alan M Bond, John F Boas, Si-Xuan Guo, Gopalan Rajaraman, Keith S Murray.   

Abstract

The reaction of [Co(II)(NO3)2]·6H2O with the nitroxide radical, 4-dimethyl-2,2-di(2-pyridyl) oxazolidine-N-oxide (L(•)), produces the mononuclear transition-metal complex [Co(II)(L(•))2](NO3)2 (1), which has been investigated using temperature-dependent magnetic susceptibility, electron paramagnetic resonance (EPR) spectroscopy, electrochemistry, density functional theory (DFT) calculations, and variable-temperature X-ray structure analysis. Magnetic susceptibility measurements and X-ray diffraction (XRD) analysis reveal a central low-spin octahedral Co(2+) ion with both ligands in the neutral radical form (L(•)) forming a linear L(•)···Co(II)···L(•) arrangement. This shows a host of interesting magnetic properties including strong cobalt-radical and radical-radical intramolecular ferromagnetic interactions stabilizing a S = (3)/2 ground state, a thermally induced spin crossover transition above 200 K and field-induced slow magnetic relaxation. This is supported by variable-temperature EPR spectra, which suggest that 1 has a positive D value and nonzero E values, suggesting the possibility of a field-induced transverse anisotropy barrier. DFT calculations support the parallel alignment of the two radical π*NO orbitals with a small orbital overlap leading to radical-radical ferromagnetic interactions while the cobalt-radical interaction is computed to be strong and ferromagnetic. In the high-spin (HS) case, the DFT calculations predict a weak antiferromagnetic cobalt-radical interaction, whereas the radical-radical interaction is computed to be large and ferromagnetic. The monocationic complex [Co(III)(L(-))2](BPh4) (2) is formed by a rare, reductively induced oxidation of the Co center and has been fully characterized by X-ray structure analysis and magnetic measurements revealing a diamagnetic ground state. Electrochemical studies on 1 and 2 revealed common Co-redox intermediates and the proposed mechanism is compared and contrasted with that of the Fe analogues.

Entities:  

Year:  2013        PMID: 23777336     DOI: 10.1021/ic400565h

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


  3 in total

1.  Oxazolidine Nitroxide Transformation in a Coordination Sphere of the Ln3+ Ions.

Authors:  Philippe Rey; Anton I Smolentsev; Kira E Vostrikova
Journal:  Molecules       Date:  2022-03-01       Impact factor: 4.411

2.  Spin-Crossover and Slow Magnetic Relaxation Behavior in Hexachlororhenate(IV) Salts of Mn(III) Complexes [Mn(5-Hal-sal2323)]2[ReCl6] (Hal = Cl, Br).

Authors:  Aleksandra V Tiunova; Anna V Kazakova; Denis V Korchagin; Gennady V Shilov; Sergey M Aldoshin; Aleksei I Dmitriev; Mikhail V Zhidkov; Konstantin V Zakharov; Eduard B Yagubskii
Journal:  Int J Mol Sci       Date:  2022-09-28       Impact factor: 6.208

3.  Reversible on-off switching of both spin crossover and single-molecule magnet behaviours via a crystal-to-crystal transformation.

Authors:  Dong Shao; Le Shi; Lei Yin; Bao-Lin Wang; Zhen-Xing Wang; Yi-Quan Zhang; Xin-Yi Wang
Journal:  Chem Sci       Date:  2018-08-27       Impact factor: 9.825

  3 in total

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