从单个分子扩展室温构造量子干扰到自组装的分子电子膜
Xintai Wang1,2, Troy L R Bennett3, Ali Ismael1,4
1Physics Department, Lancaster University, Lancaster LA1 4YB, U.K.
Journal of the American Chemical Society
|April 29, 2020
概括
研究人员在分子电子膜中进行化学控制的构造性量子干扰 (CQI). 这一进步使未来电子设备的自组装单层能够调整电气和热电特性.
科学领域:
- 分子电子
- 量子干扰现象
- 纳米级热电
背景情况:
- 量子干扰 (QI) 效应对于分子电子来说至关重要,但将它们从单个分子扩展到更大的数组是具有挑战性的.
- 之前的研究重点是破坏性QI (DQI);在自组装单层 (SAM) 中控制建设性QI仍然是一个开放的领域.
研究的目的:
- 通过SAM进行横平面传输,以证明化学控制构造性量子干扰 (CQI).
- 研究CQI对SAM热电特性的影响.
- 将单个分子的QI控制转化为SAM-on-gold分子膜.
主要方法:
- 结合实验和理论研究.
- 合成化学可以改变基在基核周围的连接性.
- SAM的形成及其电和热电性质的表征.
主要成果:
- 在基于炭的SAM中证明了CQI的化学控制,根据分子连接性显示了约16倍的导电率差异.
- 显示SAM中的Seebeck系数与thioether组是依赖于连接的.
- 通过优化连接实现了~50%的Seebeck系数提升.
结论:
- 在SAM中可以实现CQI的化学控制,将单分子现象转化为薄膜装置.
- 这种控制影响电导率和热电特性,特别是Seebeck系数.
- 这些发现代表了开发用于分子电子和热电应用的功能超薄膜设备的重要一步.
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