Escola Universitària Salesiana de Sarrià, Passeig Sant Joan Bosco 74, 08017-Barcelona, Spain.
Dalton Trans. 2013 Jul 28;42(28):10153-71. doi: 10.1039/c3dt51080h.
The synthesis and magnetostructural properties of a new low-dimensional magnetic system based on α-furoate ligands, {[Dy(α-C4H3OCOO)(μ-(α-C4H3OCOO))2(H2O)3]}n, abbreviated {Dy(α-fur)3}n, are reported. X-ray diffraction experiments results evidence the presence of two different Dy coordination environment types differing only in the position of one of the furoate ligands. The crystallographic structure is formed by polymeric chains along the c-axis, each composed of just one Dy type, coupled within the bc-plane with chains of the same Dy type. These planes, each of them containing only one Dy type, are randomly stacked along the a-axis. The magnetic behaviour was studied by magnetization, static and dynamic susceptibility, heat capacity measurements and ab initio simulations. The directions of the easy axes of magnetization, gyromagnetic values and energy level structures of the two Dy types were obtained from ab initio calculations. {Dy(α-fur)3}n exhibits slow magnetic relaxation dynamics below 10 K. The two Dy types with different coordination environments behave as single-ion magnets, with different thermal activation energies of 80.5(6) K and 32.4(5) K, until they reach, upon cooling, a quantum tunneling (QT) regime. Magnetic diluted samples, substituting Dy by Y, {Y(x)Dy(1-x)(α-fur)3}n, were prepared to study the effect of intercluster interactions. Decreasing the Dy interaction by dilution by 90-95% leaves the activation energy unchanged, but shifts the transition to the QT regime to lower temperatures. At T = 2.4 K the tunneling time constant has been shown to decrease weakly with the field in the x = 0 case, and more strongly for x = 0.9. As the external field increases, quantum tunneling is quenched and a new slow relaxation appears that is identified at high fields as caused by a direct relaxation process. As the temperature is decreased, interchain AF coupling becomes effective and gives rise to the occurrence of an antiferromagnetic 3D order transition at T(N) = 0.66 K. From all the evidence, it is concluded that within each bc-plane Dy ions arrange in chains along the c-direction, having weak uncompensated ferromagnetic spin-canted intrachain coupling and antiferromagnetic interchain coupling.
基于呋喃酸配体的新型低维磁性体系{[Dy(α-C4H3OCOO)(μ-(α-C4H3OCOO))2(H2O)3]}n(简写为{Dy(α-fur)3}n)的合成和磁结构性质的研究。X 射线衍射实验结果表明,存在两种不同的 Dy 配位环境类型,它们仅在呋喃酸配体的一个位置上有所不同。晶体结构由沿 c 轴排列的聚合物链组成,每个链仅由一种 Dy 类型组成,在 bc 平面内与相同 Dy 类型的链耦合。这些平面,每个平面仅包含一种 Dy 类型,沿 a 轴随机堆叠。通过磁化、静态和动态磁化率、热容测量和从头算模拟研究了磁性。从从头算计算中得到了两个 Dy 类型的易磁化轴方向、旋磁比和能级结构。{Dy(α-fur)3}n 在 10 K 以下表现出缓慢的磁弛豫动力学。具有不同配位环境的两种 Dy 类型表现为单离子磁体,具有不同的热激活能,分别为 80.5(6) K 和 32.4(5) K,直到它们在冷却时达到量子隧道(QT)状态。通过用 Y 取代 Dy 制备了磁稀释样品{Y(x)Dy(1-x)(α-fur)3}n,以研究簇间相互作用的影响。通过稀释将 Dy 相互作用降低 90-95%,不会改变激活能,但会将转变为 QT 状态的温度降低。在 T = 2.4 K 下,隧道时间常数在 x = 0 情况下随磁场的微弱增加而减小,在 x = 0.9 情况下则更强。随着外场的增加,量子隧道被猝灭,出现一种新的缓慢弛豫现象,在高场下被确定为直接弛豫过程引起的。随着温度的降低,链间反铁磁耦合变得有效,并在 T(N)= 0.66 K 时出现反铁磁 3D 有序转变。从所有证据来看,可以得出结论,在每个 bc 平面内,Dy 离子沿 c 方向排列成链,具有较弱的未补偿铁磁自旋倾斜内链耦合和反铁磁链间耦合。