Wittick Lisa M, Murray Keith S, Moubaraki Boujemaa, Batten Stuart R, Spiccia Leone, Berry Kevin J
School of Chemistry, Monash University, Victoria 3800, Australia.
Dalton Trans. 2004 Apr 7(7):1003-11. doi: 10.1039/b312672b. Epub 2004 Mar 2.
A family of tetranuclear mixed-valent Mn(II)(2)/Mn(III)(2) complexes of type Mn(4)(LH(2))(2)(LH)(2)(H(2)O)(x)(RCO(2))(2)2.nS has been synthesised and structurally characterised, where LH(3) = triethanolamine (N(CH(2)CH(2)OH)(3)), (R=CH(3), x=2, Y = CH(3)CO(2)-, n=2, S = H(2)O; 1), (R=C(6)H(5), x=0, Y=C(6)H(5)CO(2)-, n=1, S = CH(3)CN; 2), (R=C(2)H(5), x=0, Y=ClO(4)(-), n=0; 3). A common structural core was deduced from X-ray crystallography and consists of a rhomboidal (planar-diamond) array with two 7-coordinate Mn(II) "wingtip (w)" centres and two 6-coordinate Mn(III) "body (b)" centres. The Mn(III) ions are bridged to the Mn(II) ions by mu3-oxygen atoms from a deprotonated alcohol "arm" of each tridentate LH(2-) ligand and by mu2-oxygen atoms from each tetradentate LH(2)(-) ligand. The four nitrogen atoms from LH(2-) and LH(2)(-) groups, together with bridging and terminal carboxylates oxygens complete the outer coordination sites around the Mn atoms. A feature of these clusters is that they are linked together in the crystal lattice by hydrogen-bonding interactions involving a non-coordinated hydroxyl arm on each LH(2-) group. Detailed DC and AC magnetic susceptibility measurements and magnetisation isotherms have been made on the three complexes and show that intra-cluster ferromagnetic coupling is occurring between the S = 2 Mn(III) and S = 5/2 Mn(II) ions to yield S = 9 ground states. The g, J(bb) and J(wb) parameters have been deduced. Inter-cluster antiferromagnetic coupling was noted in and this influences the magnetisation versus field behaviour and the temperature and magnitude of the out-of-phase AC chi"M maxima in comparison to those observed for and. An Arrhenius plot of the reciprocal temperature of the maxima in chi"M obtained at different frequencies (10 to 1500 Hz), in the range 1.75 K to 4 K, against the natural logarithm of the magnetization relaxation rate (1/tau) yielded values of the activation energies and pre-exponential factors for two of these new tetranuclear single-molecule magnets (SMMs), and. The activation energies were compared with the potential energy barrier height, U, for magnetisation direction reversal (U = DS(2)) using the axial zero-field splitting parameter, D, deduced from the DC M/H isotherm analysis for these S = 9 species. The very small separation of S = 9 and 8 levels for these clusters highlights the limitations in the determination of D values from M/H data at low temperatures.
已合成并对一类通式为Mn₄(LH₂)₂(LH)₂(H₂O)ₓ(RCO₂)₂₂·nS的四核混合价态Mn(II)₂/Mn(III)₂配合物进行了结构表征,其中LH₃ = 三乙醇胺(N(CH₂CH₂OH)₃),(R = CH₃, x = 2, Y = CH₃CO₂⁻, n = 2, S = H₂O;1),(R = C₆H₅, x = 0, Y = C₆H₅CO₂⁻, n = 1, S = CH₃CN;2),(R = C₂H₅, x = 0, Y = ClO₄⁻, n = 0;3)。通过X射线晶体学推断出一个共同的结构核心,它由一个菱形(平面菱形)阵列组成,有两个七配位的Mn(II)“翼尖(w)”中心和两个六配位的Mn(III)“主体(b)”中心。Mn(III)离子通过来自每个三齿LH₂⁻配体去质子化醇“臂”的μ₃ - 氧原子以及来自每个四齿LH₂⁻配体的μ₂ - 氧原子与Mn(II)离子桥连。来自LH₂⁻和LH₂⁻基团的四个氮原子,连同桥连和末端羧酸盐氧原子共同构成了Mn原子周围的外部配位位点。这些簇的一个特点是它们在晶格中通过氢键相互作用连接在一起,该氢键相互作用涉及每个LH₂⁻基团上一个未配位的羟基臂。已对这三种配合物进行了详细的直流和交流磁化率测量以及磁化等温线测量,结果表明在S = 2的Mn(III)和S = 5/2的Mn(II)离子之间发生了簇内铁磁耦合,从而产生S = 9的基态。已推导出g、J(bb)和J(wb)参数。在[此处可能有特定指代未明确给出]中观察到了簇间反铁磁耦合,这与[此处可能有特定指代未明确给出]相比,影响了磁化强度与磁场的行为以及异相交流χ″M最大值的温度和大小。在1.75 K至4 K范围内,针对不同频率(10至1500 Hz)获得的χ″M最大值的倒数温度与磁化弛豫率(1/τ)的自然对数绘制的阿仑尼乌斯图,得出了这两种新的四核单分子磁体(SMMs)[此处可能有特定指代未明确给出]的活化能和指前因子值。利用从这些S = 9物种的直流M/H等温线分析推导得到的轴向零场分裂参数D,将活化能与磁化方向反转的势能垒高度U(U = DS²)进行了比较。这些簇的S = 9和8能级的非常小的间隔突出了在低温下从M/H数据确定D值的局限性。