Literature DB >> 23787747

Magnetic blocking in a linear iron(I) complex.

Joseph M Zadrozny1, Dianne J Xiao, Mihail Atanasov, Gary J Long, Fernande Grandjean, Frank Neese, Jeffrey R Long.   

Abstract

Single-molecule magnets that contain one spin centre may represent the smallest possible unit for spin-based computational devices. Such applications, however, require the realization of molecules with a substantial energy barrier for spin inversion, achieved through a large axial magnetic anisotropy. Recently, significant progress has been made in this regard by using lanthanide centres such as terbium(III) and dysprosium(III), whose anisotropy can lead to extremely high relaxation barriers. We contend that similar effects should be achievable with transition metals by maintaining a low coordination number to restrict the magnitude of the d-orbital ligand-field splitting energy (which tends to hinder the development of large anisotropies). Herein we report the first two-coordinate complex of iron(I), [Fe(C(SiMe3)3)2](-), for which alternating current magnetic susceptibility measurements reveal slow magnetic relaxation below 29 K in a zero applied direct-current field. This S =  complex exhibits an effective spin-reversal barrier of Ueff = 226(4) cm(-1), the largest yet observed for a single-molecule magnet based on a transition metal, and displays magnetic blocking below 4.5 K.

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Year:  2013        PMID: 23787747     DOI: 10.1038/nchem.1630

Source DB:  PubMed          Journal:  Nat Chem        ISSN: 1755-4330            Impact factor:   24.427


  31 in total

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5.  Detailed ab initio first-principles study of the magnetic anisotropy in a family of trigonal pyramidal iron(II) pyrrolide complexes.

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Journal:  Inorg Chem       Date:  2011-07-11       Impact factor: 5.165

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  39 in total

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3.  High Magnetic Anisotropy of a Square-Planar Iron-Carbene Complex.

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6.  Meta-Atom Behavior in Clusters Revealing Large Spin Ground States.

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7.  A Straightforward Access to Stable, 16 Valence-electron Phosphine-Stabilized Fe0 Olefin Complexes and their Reactivity.

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8.  Useful Method for the Preparation of Low-Coordinate Nickel(I) Complexes via Transformations of the Ni(I) Bis(amido) Complex K{Ni[N(SiMe3)(2,6- i Pr2-C6H3)]2}

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9.  Holmium(iii) molecular nanomagnets for optical thermometry exploring the luminescence re-absorption effect.

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10.  Quantum engineering of spin and anisotropy in magnetic molecular junctions.

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