首页> 外文学位 >Investigation of magnetic properties in the case of three families of 1-dimensional magnets: M(II)A(4,4'-bipyridine); M = iron, cobalt, nickel, copper; A = chloride, nitrogen, (ox).
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Investigation of magnetic properties in the case of three families of 1-dimensional magnets: M(II)A(4,4'-bipyridine); M = iron, cobalt, nickel, copper; A = chloride, nitrogen, (ox).

机译:研究三族一维磁体的磁性能:M(II)A(4,4'-bipyridine); M =铁,钴,镍,铜; A =氯,氮(ox)。

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摘要

Magnetic properties of three families of metal-organic coordinated networks which have the general form of M(II)A(4,4'-bipyridine), where M=Fe, Ni, Co, and Cu and A=Cl2, (ox) and (N3)2, are studied in this dissertation. Novel Ni(N3)2(4,4'-bipyridine), Co(N3)2(4,4'-bipyridine) and Cu(N 3)2(4,4'-bipyridine) have been synthesized. We applied different synthesis procedures and produced Ni, Co, and Cu azide compounds for the first time, thus leaving the hydrothermal route procedure. Powder x-ray diffraction at room temperature was done in order to establish the crystal structure of the members of these three families. It was found that all of them crystallize in orthorhombic structure, where transitional metals have an octahedral coordination. Since all three families have identical crystal structure we got opportunity to examine how ligands facilitate magnetic interaction between metallic centers and also to test existing magnetic theoretical models. Since 4,4'-bipyridine is much longer than other ligands, our systems can be considered as 1-D magnetic systems. Their interchain magnetic interactions are very weak, and they order magnetically at very low temperatures of the order of few K. Measurements of M(H) at temperatures T=1.9K and T=2K and chi(T) in different external magnetic fields in zero field and field cooled modes have been made. In the case of MCl2(4,4'-bipyridine) family of compounds, we observed ferromagnetic interactions between metal ions within the chains and antiferromagnetic interactions between adjacent chains. M(ox)(4,4'-bipyridine) family of metal-organic compounds has antiferromagnetic interactions between the transitional metal ions within the chain, while weak ferromagnetic interaction exists between the chains. All members in the M(N3)2(4,4'-bipyridine) family except in the case of the copper compound were found to have ferromagnetic interactions between metal ions within the chains and then antiferromagnetic interactions between adjacent chains. The copper compound does not show magnetic ordering in the temperature range we considered. All the metal ions in these compounds were detected in high spin states. The magnetic susceptibility data was fit to appropriate 1-D models, which in the case of MCl2(4,4'-bipyridine) and M(N3)2(4,4'-bipyridine) were the Classical Spin Fisher model, and the Bonner Fisher model in the case M(ox)(4,4'-bipyridine). The experimental results and fitting to the appropriate model with the accuracy of 0.995 suggests that shorter Cl-M-Cl distances facilitate ferromagnetic interactions, which are more sensitive to the total spin value then to the sole distance between metal ions. The magnetic behavior of M(N3) 2(4,4'-bipyridine) family of coordinated metal-organic compounds is very interesting because family members exhibit both ferromagnetic and antiferromagnetic behavior. The ferromagnetic characteristics decrease with decreasing spin. Fitting the results for all compounds of the M(ox)(4,4'-bipyridine) family have shown that strong anisotropy exists in all of them, being highest in Ni(ox)(4,'4-bipyridine) and lowest in Co(ox)(4,4'-bipyridine). Specific heat measurements were performed in the case of cobalt and copper azide compounds and then compared with previously obtained results for the iron coordinated network of the same family. Although none of these compounds show the characteristic lambda shaped transition indicating magnetic ordering, all of them have unusually large values of the constant gamma, which indicates significant magnetic contribution to the observed specific heat, since the free electron contribution in these observed families is negligible. We have concluded that total spin of the transitional metal plays a more important role than the distance between ions within the chain in determining magnitude of interaction, and that (N3)2 is a better facilitator of ferromagnetic interaction between ions than Cl2.
机译:具有一般形式的M(II)A(4,4'-联吡啶)的三族金属-有机配位网络的磁性,其中M = Fe,Ni,Co和Cu,A = Cl2(ox)本文对(N3)2进行了研究。已经合成了新颖的Ni(N3)2(4,4'-联吡啶),Co(N3)2(4,4'-联吡啶)和Cu(N 3)2(4,4'-联吡啶)。我们应用了不同的合成程序,并首次生产了Ni,Co和Cu叠氮化物,从而离开了水热路线程序。为了确定这三个家族的成员的晶体结构,在室温下进行了粉末X射线衍射。发现它们全部以正交结构结晶,其中过渡金属具有八面体配位。由于这三个族具有相同的晶体结构,因此我们有机会检查配体如何促进金属中心之间的磁相互作用,并测试现有的磁理论模型。由于4,4'-联吡啶比其他配体长得多,因此我们的系统可以视为一维磁性系统。它们的链间磁性相互作用非常弱,并且它们在几K左右的非常低的温度下具有磁性。在温度T = 1.9K和T = 2K时,M(H)在不同的外部磁场中测量。零场和场冷却模式已制成。在MCl2(4,4'-联吡啶)家族化合物的情况下,我们观察到链内金属离子之间的铁磁相互作用和相邻链之间的反铁磁相互作用。金属有机化合物的M(ox)(4,4'-联吡啶)家族在链内的过渡金属离子之间具有反铁磁相互作用,而在链之间存在弱的铁磁相互作用。 M(N3)2(4,4'-联吡啶)家族中的所有成员(铜化合物除外)在链内金属离子之间均具有铁磁相互作用,而在相邻链之间具有反铁磁相互作用。在我们考虑的温度范围内,铜化合物没有显示出磁序。这些化合物中的所有金属离子都在高自旋状态下检测到。磁化率数据适合于合适的1-D模型,在MCl2(4,4'-联吡啶)和M(N3)2(4,4'-联吡啶)的情况下,其为经典自旋Fisher模型,在M(ox)(4,4'-bipyridine)情况下的Bonner Fisher模型。实验结果和对合适模型的拟合(精度为0.995)表明,较短的Cl-M-Cl距离促进铁磁相互作用,这对总自旋值比对金属离子之间的唯一距离更敏感。 M(N3)2(4,4'-联吡啶)配位的金属-有机化合物的磁行为非常有趣,因为族成员同时表现出铁磁和反铁磁行为。铁磁特性随自旋的降低而降低。拟合所有M(ox)(4,4'-联吡啶)族化合物的结果表明,所有化合物均存在强各向异性,Ni(ox)(4,'4-联吡啶)最高, Co(ox)(4,4'-联吡啶)。在钴和叠氮化铜化合物的情况下进行了比热测量,然后与先前获得的同一族的铁配位网络的结果进行了比较。尽管这些化合物均未显示出指示磁序的特征性λ形跃迁,但它们都具有异常大的恒定伽马值,这表明对观测到的比热具有重要的磁性贡献,因为这些观测到的族中的自由电子贡献可忽略不计。我们已经得出结论,过渡金属的总自旋在确定相互作用的大小方面比链中离子之间的距离更重要,并且与Cl2相比,(N3)2是离子之间更好的铁磁相互作用的促进剂。

著录项

  • 作者

    Danilovic, Dusan S.;

  • 作者单位

    Temple University.;

  • 授予单位 Temple University.;
  • 学科 Chemistry Physical.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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