Materials Sciences Division, Lawrence Berkeley National Laboratory , Berkeley, California 94720, United States.
J Am Chem Soc. 2018 Feb 14;140(6):2058-2061. doi: 10.1021/jacs.7b13394. Epub 2018 Feb 1.
The tetranuclear cobalt cluster compound [Co(μ-NPBu)][B(CF)] (Bu = tert-butyl) was synthesized by chemical oxidation of Co(NPBu) with [FeCp][B(CF)] and magnetically characterized to study the effect of electronic communication between low-coordinate metal centers on slow magnetic relaxation in a transition metal cluster. The dc magnetic susceptibility data reveal that the complex exhibits a well-isolated S = / ground state, which persists even to 300 K and is attributed to the existence of direct metal-metal orbital overlap. The ac magnetic susceptibility data further reveals that the complex exhibits slow magnetic relaxation in the absence of an applied field, and that the relaxation dynamics can be fit with a combination of Orbach, quantum tunneling, and Raman relaxation processes. The effective spin reversal barrier for this molecule is 87 cm, the largest reported to date for a transition metal cluster, and arises due to the presence of a large easy-axis magnetic anisotropy. The complex additionally exhibits waist-restricted magnetic hysteresis and magnetic blocking below 3.6 K. Taken together, these results indicate that coupling of low-coordinate metal centers is a promising strategy to enhance magnetic anisotropy and slow magnetic relaxation in transition metal cluster compounds.
四核钴簇化合物[Co(μ-NPBu)][B(CF )](Bu = 叔丁基)通过 Co(NPBu)与[FeCp][B(CF )]的化学氧化合成,并进行了磁性表征,以研究低配位金属中心之间的电子通讯对过渡金属簇中慢磁弛豫的影响。直流磁化率数据表明,该配合物表现出很好的孤立 S = /基态,即使在 300 K 下也保持不变,这归因于直接的金属-金属轨道重叠的存在。交流磁化率数据进一步表明,该配合物在没有外加磁场的情况下表现出慢磁弛豫,弛豫动力学可以用 Orbach、量子隧道和 Raman 弛豫过程的组合来拟合。该分子的有效自旋反转势垒为 87 cm,是迄今为止报道的最大的过渡金属簇,这是由于存在大的易轴各向异性磁各向异性所致。该配合物还表现出在 3.6 K 以下的腰部受限磁滞和磁阻塞。综上所述,这些结果表明,低配位金属中心的耦合是增强过渡金属簇化合物中磁各向异性和慢磁弛豫的一种很有前途的策略。