Institute of Organic Chemistry and Biochemistry, v.v.i., Academy of Sciences of the Czech Republic, Flemingovo nám. 2, 16610 Prague 6, Czech Republic.
Nanoscale. 2015 May 21;7(19):8793-802. doi: 10.1039/c5nr01297j.
Helicenes are inherently chiral polyaromatic molecules composed of all-ortho fused benzene rings possessing a spring-like structure. Here, using a combination of density functional theory and tight-binding calculations, it is demonstrated that controlling the length of the helicene molecule by mechanically stretching or compressing the molecular junction can dramatically change the electronic properties of the helicene, leading to a tunable switching behavior of the conductance and thermopower of the junction with on/off ratios of several orders of magnitude. Furthermore, control over the helicene length and number of rings is shown to lead to more than an order of magnitude increase in the thermopower and thermoelectric figure-of-merit over typical molecular junctions, presenting new possibilities of making efficient thermoelectric molecular devices. The physical origin of the strong dependence of the transport properties of the junction is investigated, and found to be related to a shift in the position of the molecular orbitals.
螺苯是由全稠合苯环组成的固有手性多环芳烃分子,具有类似发条的结构。在这里,通过密度泛函理论和紧束缚计算的结合,证明通过机械拉伸或压缩分子结来控制螺苯分子的长度,可以显著改变螺苯的电子性质,从而实现结的电导和热功率的可调谐开关行为,具有几个数量级的导通/关断比。此外,控制螺苯的长度和环数可使热功率和热电优值比典型的分子结增加一个数量级以上,为制造高效的热电分子器件提供了新的可能性。研究了结的输运性质强烈依赖的物理起源,发现这与分子轨道位置的移动有关。