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相关概念视频

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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...
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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,...
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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.
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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...
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一个三角挫折的欧II) 有机框架用于低凯尔文磁制冷

Anna S Manvell1, Maja A Dunstan1, David Gracia2

  • 1Department of Chemistry, Technical University of Denmark, DK-2800 Kongens Lyngby, Denmark.

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|January 22, 2025
PubMed
概括

研究人员开发了一种基于分子的新型冷却液, Eu$_{0.9}$Ba$_{0.1}$I$_{2}$(pyrazine) $, 这种磁性制冷剂避免了稀缺的资源,并使先进的冷应用成为可能.

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科学领域:

  • 材料科学
  • 凝聚物质物理学
  • 低温物理

背景情况:

  • 达到凯尔文以下的温度是很困难的,通常需要稀缺的-3 (3He).
  • 无磁化制冷使用了磁性离子,但它们的弱相互作用限制了冷却液的密度.
  • 离子间的距离极大地影响了磁相互作用,阻碍了密集的冷却液的发展.

研究的目的:

  • 引入一种新的基于分子的磁性制冷剂,
  • 为了研究E$_{0.9}$Ba$_{0.1}$I$_{2}$ pyrazine) $ 的磁性特性和低温行为.

主要方法:

  • 一个磁性集中的三角协调网络的合成: Eu$_{0.9}$Ba$_{0.1}$I$_{2}${(pyrazine) $_{3}$具有很大的 Eu{II} moments.
  • 使用电子磁共振,磁化测量和热容量分析进行表征.
  • 研究磁性相关性和低至0.17K的异构性.

主要成果:

  • 该材料表现出反铁磁相关性和轻平面磁性不均性.
  • 几何挫折阻止了磁力下降到0.17K.
  • 证明了低维的磁性制冷剂的低工作温度.

结论:

  • 是一个有前途的材料, 低于凯尔文的冷.
  • 这种基于分子的制冷剂可以替代3He和已知的无机制冷剂.
  • 潜在的应用包括芯片冷却和专用冷却场景.