College of Chemistry and Chemical Engineering, Baoji University of Arts and Sciences, Baoji 721013, China.
Dalton Trans. 2018 Sep 11;47(35):12393-12405. doi: 10.1039/c8dt02361a.
Tuning the magnetic dynamics of single-molecule magnets (SMMs) is a crucial challenge for chemists. Some feasible approaches have been developed to understand parts of the magneto-structural correlations and regulate the relaxation behaviors via rational design. Herein, the syntheses, structures and magnetic properties of two mononuclear DyIII SMMs are reported. The first structural motif reveals a trigonal dodecahedron (D2d) N2O6 coordination environment in 1, while the second one displays a square antiprismatic configuration (D4d). A DyDy distance of 8.589 Å in 1 is clearly shorter than that of 2 (10.433 Å) because of the existence of ππ stacking between benzene rings from two adjacent dbpy molecules in 1. The temperature and frequency-dependent out-of-phase ac susceptibility peaks were observed in the absence of a static dc field for 1 and 2. Two distinct thermal relaxation processes were observed in 1, while 2 exhibits one thermal relaxation process. It is interesting that the quantum tunneling of magnetization (QTM) was suppressed when optimum dc fields (1000 Oe) were applied. From ab initio calculations, the energies of the first excited state (KD1) are indeed close to the experimental relaxation energy barrier (Ueff) under zero dc field, which also reveals the typical features associated with the SMM behavior. In detail, the Ueff values are 103.62 cm-1 (149.87 K) as well as 55.10 cm-1 (79.69 K) for 1 and 116.07 cm-1 (167.87 K) for 2. The KD1 of 1 (133.82 cm-1) is slightly higher than that of 2 (129.31 cm-1). Comparing 1 and 2, this discrepancy from KD1 and the experimental Ueff might come from the apparent difference in the magnitude of tunneling probability between the two compounds. In other words, the intermolecular dipolar field plays an important role in their magnetic properties.
调谐单分子磁体(SMMs)的磁动力学是化学家面临的一个关键挑战。已经开发了一些可行的方法来通过合理设计理解部分磁结构相关性并调节弛豫行为。本文报道了两个单核 DyIII SMMs 的合成、结构和磁性质。第一个结构基序在 1 中呈现出三角十二面体(D2d)N2O6 配位环境,而第二个结构基序显示出正方形反棱柱构型(D4d)。1 中的 DyDy 距离为 8.589 Å,明显短于 2(10.433 Å),因为在 1 中,两个相邻 dbpy 分子的苯环之间存在ππ堆积。1 和 2 在没有静态直流磁场的情况下,观察到温度和频率依赖性的反相交流磁化率峰。在 1 中观察到两个不同的热弛豫过程,而在 2 中仅观察到一个热弛豫过程。有趣的是,当施加最佳直流场(1000 Oe)时,磁量子隧道效应(QTM)被抑制。从头算计算表明,在零直流场下,第一激发态(KD1)的能量确实接近实验弛豫能垒(Ueff),这也揭示了与 SMM 行为相关的典型特征。具体而言,对于 1,Ueff 值分别为 103.62 cm-1(149.87 K)和 55.10 cm-1(79.69 K);对于 2,Ueff 值为 116.07 cm-1(167.87 K)。1 的 KD1(133.82 cm-1)略高于 2 的 KD1(129.31 cm-1)。比较 1 和 2,从 KD1 和实验 Ueff 可以看出这一差异可能来自于两个化合物之间隧道概率的明显差异。换句话说,分子间偶极场在它们的磁性质中起着重要作用。