合作性旋转交叉导致在一个铁 (III) 复合体中的可二位和多惰性系统状态
Andreas Dürrmann1,2, Gerald Hörner1,2, Dirk Baabe3
1Institute for Inorganic and Analytical Chemistry, Friedrich Schiller University Jena, Humboldtstraße 8, Jena, Germany.
Nature communications
|August 25, 2024
概括
这项研究表明,铁 (III) 化合物中的合作旋转交叉 (SCO) 可以创建多种磁状态,而不仅仅是双稳定性. 冷却速率控制高旋转 (ON) 与低旋转 (OFF) 状态的比率,使可调节的多惰性状态成为可能.
科学领域:
- 材料科学 材料科学 材料科学
- 化学 化学 化学
- 物理 物理学 物理
背景情况:
- 旋转交叉 (SCO) 研究传统上使用合作性来通过热歇斯底里实现磁性双稳定性.
- 在SCO材料中实现多重磁性状态是一个重大挑战.
研究的目的:
- 在低温下研究铁 (III) 化合物 ({FeL2[B(Ph) 4}或FeB) 中的磁性多惰性状态.
- 探索冷却速率与由此产生的旋转状态之间的关系.
主要方法:
- 铁 (III) 化合物{FeL2[B(Ph) 4}}的合成和表征.
- 低温磁性测量. 在低温磁性测量.
- 对剩余磁化对冷却速率的依赖性的分析.
主要成果:
- 铁 (III) 化合物FeB除了具有热双稳定性外,还表现出磁性多惰性状态.
- 在低旋转和高旋转形式之间晶体包装的边际差异表明结构保守主义.
- 低温磁化的冷却速度依赖性揭示了被困的高旋转 (ON) 和放松的低旋转 (OFF) 状态之间的连续切换.
- 开启/关闭旋转状态比可以通过调整冷却速率来调整.
结论:
- 合作性旋转交叉可以导致同一材料内的双可分和多惰性系统状态.
- 阳离子矩阵有效地弥补了复杂的阴离子自旋状态引起的体积变化.
- 这项工作为设计具有可调节磁性特性的材料提供了新的途径.
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