一维铁磁链化合物dsm (NCS)2(硫脲)2(M=Ni,Co)的磁基态

S. Curley, R. Scatena, R. C. Williams, P. Goddard, P. Macchi, T. J. Hicken, T. Lancaster, F. Xiao, S. Blundell, V. Zapf, J. Eckert, E. Krenkel, J. Villa, M. Rhodehouse, J. Manson
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引用次数: 4

摘要

Ni(NCS)两种等结构分子基磁体的磁性能$_{2}$(硫脲)$_{2}$, $S$ = 1,[硫脲]= SC(NH)$_2$)$_2$]及Co(NCS)$_{2}$(硫脲)$_{2}$, $S$ = 3/2,用几种技术来表征,以便使它们与结构参数的关系合理化,并确定自旋取代引起的磁变化。零场热容和介子自旋弛豫测量结果显示,这两种化合物在低温下都有长程有序。$D < 0$)单离子各向异性($D_{\rm{Co}} \sim$ - 100k, $D_{\rm{Ni}} \sim$ 晶体和电子结构,结合直流磁场磁强计,证实了高度准一维行为,具有铁磁链内交换相互作用 $J_{\rm{Co}}\approx+4$ K和 $J_{\rm{Ni}}\sim+100$ K与弱反铁磁链间交换,量级为 $J'$ $\sim-0.1$ K.电子电荷和自旋密度映射揭示了通过空间交换作为一种机制来解释在 $J$-值,尽管从结构角度来看,两种材料的交换途径非常相似。这两种化合物都可以与相似的化合物相比较 $M$Cl$_2$(硫脲)$_4$, $M$ = Ni(II) (DTN)和Co(II) (DTC),其中DTN已知包含两个磁场诱导的量子临界点。将DTN和DTC与本文所研究的化合物进行直接比较,发现它们取代了卤化物Cl$^-$ 离子,为NCS$^-$ 离子,导致结构和磁性的巨大变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic ground state of the one-dimensional ferromagnetic chain compoundsM(NCS)2(thiourea)2(M=Ni,Co)
The magnetic properties of the two isostructural molecule-based magnets, Ni(NCS)$_{2}$(thiourea)$_{2}$, $S$ = 1, [thiourea = SC(NH$_2$)$_2$] and Co(NCS)$_{2}$(thiourea)$_{2}$, $S$ = 3/2, are characterised using several techniques in order to rationalise their relationship with structural parameters and ascertain magnetic changes caused by substitution of the spin. Zero-field heat capacity and muon-spin relaxation measurements reveal low-temperature long-range ordering in both compounds, in addition to Ising-like ($D < 0$) single-ion anisotropy ($D_{\rm{Co}} \sim$ -100 K, $D_{\rm{Ni}} \sim$ -10 K). Crystal and electronic structure, combined with DC-field magnetometry, affirm highly quasi-one-dimensional behaviour, with ferromagnetic intrachain exchange interactions $J_{\rm{Co}}\approx+4$ K and $J_{\rm{Ni}}\sim+100$ K and weak antiferromagnetic interchain exchange, on the order of $J'$ $\sim-0.1$ K. Electron charge and spin-density mapping reveals through-space exchange as a mechanism to explain the large discrepancy in $J$-values despite, from a structural perspective, the highly similar exchange pathways in both materials. Both species can be compared to the similar compounds $M$Cl$_2$(thiourea)$_4$, $M$ = Ni(II) (DTN) and Co(II) (DTC), where DTN is know to harbour two magnetic field-induced quantum critical points. Direct comparison of DTN and DTC with the compounds studied here shows that substituting the halide Cl$^-$ ion, for the NCS$^-$ ion, results in a dramatic change in both the structural and magnetic properties.
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