论文标题
电子结构可调节性通过一维有机半导体中的周期性元配体间距可调
Electronic structure tunability by periodic meta-ligand spacing in one-dimensional organic semiconductors
论文作者
论文摘要
设计具有不同边界轨道的分子有机半导体是开发具有理想特性的设备的关键。可以通过表面合成来实现具有原子精度的定义有机纳米结构。我们使用这种干燥的化学物质在元杂交形式中引入拓扑变化。正如STM和LEED所证明的那样,我们在附近银晶体上产生了宏观有序的单层薄锯齿形链膜。这些跨缀合的纳米结构有望显示出改变的电子特性,现在通过高度互补的实验技术(ARPES和STS)和理论计算(DFT和EPWE)揭示了这些特性。我们发现,元口音主导了弱分散带结构,而频带隙可以通过更改线性段的长度来调谐。这些周期性拓扑效应会导致相邻线性段之间的电子耦合显着损失,从而以弱耦合的量子点的形式导致部分电子限制。这种周期性的量子干扰效应决定了链的总体半导体特征和功能。
Designing molecular organic semiconductors with distinct frontier orbitals is key for the development of devices with desirable properties. Generating defined organic nanostructures with atomic precision can be accomplished by on-surface synthesis. We use this dry chemistry to introduce topological variations in a conjugated poly-para-phenylene chain in the form of meta-junctions. As evidenced by STM and LEED, we produce a macroscopically ordered, monolayer thin zigzag chain film on a vicinal silver crystal. These cross-conjugated nanostructures are expected to display altered electronic properties, which are now unravelled by highly complementary experimental techniques (ARPES and STS) and theoretical calculations (DFT and EPWE). We find that meta-junctions dominate the weakly dispersive band structure, while the bandgap is tunable by altering the linear segment's length. These periodic topology effects induce significant loss of the electronic coupling between neighboring linear segments leading to partial electron confinement in the form of weakly coupled Quantum Dots. Such periodic quantum interference effects determine the overall semiconducting character and functionality of the chains.