在金属有机框架中的远程铁磁排序的起源与抗铁磁二维-Cu (II) 建筑单元
Lei Shen1, Shuo-Wang Yang, Shengchang Xiang
1Department of Physics, 2 Science Drive 3, National University of Singapore, Singapore 117542, Singapore.
Journal of the American Chemical Society
|September 27, 2012
概括
有铜空缺的金属有机框架 (MOF) 呈现出意想不到的铁磁性. 这源于铜空位的局部自旋极化,通过链接电子相结合,建立了远程磁性秩序.
科学领域:
- 材料科学 材料科学 材料科学
- 固态物理 固态物理
- 磁力学 磁力学 是一种
背景情况:
- 合成的金属有机框架 (MOF) 来自抗铁磁铜 (II) 模和非磁性链接器往往显示出意想不到的铁磁性质.
- 在MOF中驱动这种远程铁磁合的精确机制仍然不完全理解.
研究的目的:
- 为了阐明远程铁磁合的起源,在一系列由抗铁磁二维-Cu (II) 构建块构建的MOF中.
- 调查铜空缺在介导铁磁相互作用中的作用.
主要方法:
- 使用了结合理论和实验方法的方法.
- 描述包括分析铜空位状态,旋转极化和局部电流时刻形成.
- 测量了磁性歇斯底里斯 (M-H) 循环,以确认铁磁秩序.
主要成果:
- 观察到铜空位状态的强烈局部化,导致自发旋转极化和局部磁矩的形成.
- 发现这些诱导的时刻通过结合的芳香链接器中的流浪电子结合在一起.
- 实验证据证实了铜空缺的存在,并展示了磁性歇斯底里循环.
结论:
- 铜空缺是诱导这些MOF中远程铁磁合的关键.
- 该机制涉及在空位上的自旋两极化,通过链接器的pi电子系统进行合.
- 这项研究提供了对MOF铁磁性的基本理解,为新型磁性材料铺平了道路.
相关概念视频
Colors and Magnetism
Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human eye.
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human eye.
Crystal Field Theory - Octahedral Complexes
Crystal Field Theory
To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions between the electrons from the ligands and the electrons in the unhybridized d orbitals of the central metal atom has been developed. This electrostatic model is crystal field theory (CFT). It helps to understand, interpret, and predict the colors, magnetic behavior, and some structures of coordination compounds of transition metals.
CFT focuses on...
To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions between the electrons from the ligands and the electrons in the unhybridized d orbitals of the central metal atom has been developed. This electrostatic model is crystal field theory (CFT). It helps to understand, interpret, and predict the colors, magnetic behavior, and some structures of coordination compounds of transition metals.
CFT focuses on...
Valence Bond Theory
Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
Metallic Solids
Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability. Many...
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability. Many...
Coordination Number and Geometry
For transition metal complexes, the coordination number determines the geometry around the central metal ion. Table 1 compares coordination numbers to molecular geometry. The most common structures of the complexes in coordination compounds are octahedral, tetrahedral, and square planar.
Crystal Field Theory - Tetrahedral and Square Planar Complexes
Tetrahedral Complexes
Crystal field theory (CFT) is applicable to molecules in geometries other than octahedral. In octahedral complexes, the lobes of the dx2−y2 and dz2 orbitals point directly at the ligands. For tetrahedral complexes, the d orbitals remain in place, but with only four ligands located between the axes. None of the orbitals points directly at the tetrahedral ligands. However, the dx2−y2 and dz2 orbitals (along the Cartesian axes) overlap with the ligands less than the dxy,...
Crystal field theory (CFT) is applicable to molecules in geometries other than octahedral. In octahedral complexes, the lobes of the dx2−y2 and dz2 orbitals point directly at the ligands. For tetrahedral complexes, the d orbitals remain in place, but with only four ligands located between the axes. None of the orbitals points directly at the tetrahedral ligands. However, the dx2−y2 and dz2 orbitals (along the Cartesian axes) overlap with the ligands less than the dxy,...


