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首页> 外文期刊>Science Advances >Ultrafast direct electron transfer at organic semiconductor and metal interfaces
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Ultrafast direct electron transfer at organic semiconductor and metal interfaces

机译:在有机半导体和金属界面上超快的直接电子转移

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摘要

The ability to control direct electron transfer can facilitate the development of new molecular electronics, light-harvesting materials, and photocatalysis. However, control of direct electron transfer has been rarely reported, and the molecular conformation–electron dynamics relationships remain unclear. We describe direct electron transfer at buried interfaces between an organic polymer semiconductor film and a gold substrate by observing the first dynamical electric field–induced vibrational sum frequency generation (VSFG). In transient electric field–induced VSFG measurements on this system, we observe dynamical responses (<150 fs) that depend on photon energy and polarization, demonstrating that electrons are directly transferred from the Fermi level of gold to the lowest unoccupied molecular orbital of organic semiconductor. Transient spectra further reveal that, although the interfaces are prepared without deliberate alignment control, a subensemble of surface molecules can adopt conformations for direct electron transfer. Density functional theory calculations support the experimental results and ascribe the observed electron transfer to a flat-lying polymer configuration in which electronic orbitals are found to be delocalized across the interface. The present observation of direct electron transfer at complex interfaces and the insights gained into the relationship between molecular conformations and electron dynamics will have implications for implementing novel direct electron transfer in energy materials.
机译:控制直接电子转移的能力可以促进新的分子电子学,光收集材料和光催化的发展。然而,很少有关于直接电子转移的控制的报道,并且分子构象与电子动力学的关系仍然不清楚。我们通过观察第一动态电场诱导的振动和频率产生(VSFG),描述了在有机聚合物半导体膜和金基底之间的掩埋界面处的直接电子转移。在此系统上的瞬态电场诱导的VSFG测量中,我们观察到取决于光子能量和极化的动态响应(<150 fs),表明电子直接从金的费米能级转移到有机半导体的最低未占据分子轨道。瞬态光谱进一步揭示,尽管在没有刻意的对准控制的情况下制备了界面,但是表面分子的大量可以采用构象进行直接电子转移。密度泛函理论计算为实验结果提供了支持,并将观察到的电子转移归因于平坦的聚合物构型,在该构型中发现电子轨道在整个界面上是离域的。目前在复杂界面上直接电子转移的观察以及对分子构象与电子动力学之间关系的了解将对在能源材料中实现新型直接电子转移产生影响。

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