磁化
铁磁性
反铁磁性
材料科学
放松(心理学)
四面体
化学物理
磁化率
分子
磁滞
磁滞
化学反应
结晶学
替代(逻辑)
分子开关
转化(遗传学)
化学
磁性结构
磁畴
相变
拓扑(电路)
结晶
磁化动力学
磁各向异性
纳米技术
凝聚态物理
磁性纳米粒子
衍射
作者
Lu-Yao Ma,Binling Yao,Mengtan Cai,Rui-Han Liu,Jiong Yang,Junlun Zhu,Dong Shao
标识
DOI:10.1021/acs.cgd.6c00074
摘要
Dynamic modulation of magnetic properties by means of single-crystal-to-single-crystal (SC-SC) chemical transformations constitutes a pervasive challenge. In this study, we report the dynamic switching of structures and magnetic properties in a cobalt-carboxylate framework through a synergistic crystal-to-crystal chemical transformation. Variable-temperature single-crystal X-ray diffraction reveals the hexanuclear cobalt(II) framework exhibited a structural phase transition from [Co6(ip)5(H2O)2(μ3–OH)2(DMF)2]·DMF (Co6·DMF, ip = isophthalic acid) to [Co6(ip)5(μ3–OH)2(DMF)3] (Co6) involving the removal of two coordinated water molecules and in situ coordination of guest DMF. The concerted substitution reaction induced a significant modification of the coordination geometries of the Co6 nodes (octahedron and tetrahedron in Co6·DMF; octahedron, square pyramid, and tetrahedron in Co6). Though the nodes in the framework are distinct, the sxb topology remains unchanged. Static magnetic studies reveal that this structural transformation induces a magnetic change from strong antiferromagnetic (Weiss constants θ = −55.77 K) to weak ferromagnetic (θ = 1.76 K) interactions. Dynamic magnetic studies indicate a turn-on effect of the slow relaxation of magnetization from Co6·DMF to Co6 at low temperature. Isothermal magnetization measurements also indicate a paramagnet- to a magnet-type switching from Co6·DMF to Co6. Detailed structural analysis reveals that this magnetic property switching is caused by the structural transformation induced by the concerted substitution reaction of coordinated water with guest DMF. These findings not only demonstrate the first sxb network showing magnetic switching via SC-SC chemical transformation but also introduce a concerted substitution reaction strategy for designing switchable magnetic materials.
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