Anisotropy barrier reduction in fast-relaxing Mn 12 single-molecule magnets

Anisotropy barrier reduction in fast-relaxing Mn 12 single-molecule magnets
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快速松弛 Mn 12 单分子磁体中各向异性势垒的减少

DOI:
10.1103/physrevb.80.174416
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发表时间:
2009
期刊:
影响因子:
3.7
通讯作者:
G. Christou
G. Christou
中科院分区:
物理与天体物理2区
文献类型:
--
作者:
S. Hill;M. Murugesu;G. Christou

文献摘要

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An angle-swept high-frequency electron paramagnetic resonance (HFEPR) technique is described that facilitates efficient in situ alignment of single-crystal samples containing low-symmetry magnetic species such as single-molecule magnets (SMMs). This cavity-based technique involves recording HFEPR spectra at fixed frequency and field, while sweeping the applied field orientation. The method is applied to the study of a low-symmetry Jahn-Teller variant of the extensively studied spin $S=10$ ${\text{Mn}}_{12}$ SMMs (e.g., ${\text{Mn}}_{12}$-acetate). The low-symmetry complex also exhibits SMM behavior, but with a significantly reduced effective barrier to magnetization reversal $({U}_{\text{eff}}\ensuremath{\approx}43\text{ }\text{K})$ and, hence, faster relaxation at low temperature in comparison with the higher-symmetry species. ${\text{Mn}}_{12}$ complexes that crystallize in lower symmetry structures exhibit a tendency for one or more of the Jahn-Teller axes associated with the ${\text{Mn}}^{\text{III}}$ atoms to be abnormally oriented, which is believed to be the cause of the faster relaxation. An extensive multi-high-frequency angle-swept and field-swept electron paramagnetic resonance study of $[{\text{Mn}}_{12}{\text{O}}_{12}{({\text{O}}_{2}{\text{CCH}}_{2}{\text{Bu}}^{t})}_{16}{({\text{H}}_{2}\text{O})}_{4}]\ensuremath{\cdot}{\text{CH}}_{2}{\text{Cl}}_{2}\ensuremath{\cdot}{\text{MeNO}}_{2}$ is presented in order to examine the influence of the abnormally oriented Jahn-Teller axis on the effective barrier to magnetization reversal. The reduction in the axial anisotropy, $D$, is found to be insufficient to account for the nearly 40% reduction in ${U}_{\text{eff}}$. However, the reduced symmetry of the ${\text{Mn}}_{12}$ core gives rise to a very significant second-order transverse (rhombic) zero-field-splitting anisotropy, $E\ensuremath{\approx}D/6$. This, in turn, causes a significant mixing of spin projection states well below the top of the classical anisotropy barrier. Thus, magnetic quantum tunneling is the dominant factor contributing to the effective barrier reduction in fast relaxing ${\text{Mn}}_{12}$ SMMs.
An angle-swept high-frequency electron paramagnetic resonance (HFEPR) technique is described that facilitates efficient in situ alignment of single-crystal samples containing low-symmetry magnetic species such as single-molecule magnets (SMMs). This cavity-based technique involves recording HFEPR spectra at fixed frequency and field, while sweeping the applied field orientation. The method is applied to the study of a low-symmetry Jahn-Teller variant of the extensively studied spin $S=10$ ${\text{Mn}}_{12}$ SMMs (e.g., ${\text{Mn}}_{12}$-acetate). The low-symmetry complex also exhibits SMM behavior, but with a significantly reduced effective barrier to magnetization reversal $({U}_{\text{eff}}\ensuremath{\approx}43\text{ }\text{K})$ and, hence, faster relaxation at low temperature in comparison with the higher-symmetry species. ${\text{Mn}}_{12}$ complexes that crystallize in lower symmetry structures exhibit a tendency for one or more of the Jahn-Teller axes associated with the ${\text{Mn}}^{\text{III}}$ atoms to be abnormally oriented, which is believed to be the cause of the faster relaxation. An extensive multi-high-frequency angle-swept and field-swept electron paramagnetic resonance study of $[{\text{Mn}}_{12}{\text{O}}_{12}{({\text{O}}_{2}{\text{CCH}}_{2}{\text{Bu}}^{t})}_{16}{({\text{H}}_{2}\text{O})}_{4}]\ensuremath{\cdot}{\text{CH}}_{2}{\text{Cl}}_{2}\ensuremath{\cdot}{\text{MeNO}}_{2}$ is presented in order to examine the influence of the abnormally oriented Jahn-Teller axis on the effective barrier to magnetization reversal. The reduction in the axial anisotropy, $D$, is found to be insufficient to account for the nearly 40% reduction in ${U}_{\text{eff}}$. However, the reduced symmetry of the ${\text{Mn}}_{12}$ core gives rise to a very significant second-order transverse (rhombic) zero-field-splitting anisotropy, $E\ensuremath{\approx}D/6$. This, in turn, causes a significant mixing of spin projection states well below the top of the classical anisotropy barrier. Thus, magnetic quantum tunneling is the dominant factor contributing to the effective barrier reduction in fast relaxing ${\text{Mn}}_{12}$ SMMs.