在基于烯的分子导体中,歇斯底里旋转和电荷移位
Sushanta K Pal1, Pradip Bag, Arindam Sarkar
1Department of Chemistry, University of California, Riverside, California 92521-0403, USA.
这项研究揭示了在表现相位过渡的丁替代基中两个不同的电子状态. 在二次体内的平面间π-π距离是其歇斯底里性质的关键.
科学领域:
- 固态化学 固态化学
- 材料科学是一种材料科学.
- 有机电子学有机电子学
背景情况:
- 基于氨基的中性基因因因其电子性质而引起兴趣.
- 有机材料中的歇斯底里相过渡可以导致双稳态.
- 了解结构属性关系对于设计功能性材料至关重要.
研究的目的:
- 为了研究一个由丁替代的烯基基的固态电子结构和特性 (3).
- 分析电子密度分布,并识别在歇斯底里循环中的不同电子状态.
- 阐明对观察到的歇斯底里性阶段过渡负责的结构因素.
主要方法:
- 固态X射线衍射用于在各种温度下分析晶体结构.
- 红外 (IR) 透射率光谱检测电子状态.
- 电子密度分布的定量分析.
- 与相关的乙烯基替代基进行比较研究 (1).
主要成果:
- 在基数3的歇斯底里循环中确定了两个不同的电子状态.
- 通过IR发射率观察到这些电子状态的可比性.
- 确定二次体内平际 π-π 距离的变化对物理性质至关重要.
- 发现C-H···π相互作用和旋转再分配不会导致歇斯底里.
结论:
- 基数3中的歇斯底里相过渡主要由平面间 π-π 距离的变化决定.
- 冷却过程中的高温状态在热力学上是稳定的.
- 在加热过程中的低温状态因大幅度环运动和晶格重组而被一个大的能量屏障 (>100 kJ/mol) 动力学上捕获.
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