Department of Chemistry, Durham University, Durham, DH1 3LE, UK.
Department of Chemistry and Biochemistry, University of Bern, Freiestrasse 3, Bern, CH-3012, Switzerland.
Sci Rep. 2017 May 11;7(1):1794. doi: 10.1038/s41598-017-01903-0.
Is there a correlation between the (hetero)aromaticity of the core of a molecule and its conductance in a single molecular junction? To address this question, which is of fundamental interest in molecular electronics, oligo(arylene-ethynylene) (OAE) molecular wires have been synthesized with core units comprising dibenzothiophene, carbazole, dibenzofuran and fluorene. The biphenyl core has been studied for comparison. Two isomeric series have been obtained with 4-ethynylpyridine units linked to the core either at para-para positions (para series 1-5) or meta-meta positions (meta series 6-10). A combined experimental and computational study, using mechanically controlled break junction measurements and density functional theory calculations, demonstrates consistently higher conductance in the para series compared to the meta series: this is in agreement with increased conjugation of the π-system in the para series. Within the para series conductance increases in the order of decreasing heteroaromaticity (dibenzothiophene < carbazole < dibenzofuran). However, the sequence is very different in the meta series, where dibenzothiophene ≈ dibenzofuran < carbazole. Excellent agreement between theoretical and experimental conductance values is obtained. Our study establishes that both quantum interference and heteroaromaticity in the molecular core units play important and inter-related roles in determining the conductance of single molecular junctions.
分子核心的(杂)芳构性与其在单分子结中的电导之间是否存在相关性?为了解决这个分子电子学中基本关注的问题,已经合成了具有包含二苯并噻吩、咔唑、二苯并呋喃和芴的核心单元的寡聚(芳基乙炔)(OAE)分子线。为了进行比较,还研究了联苯核心。已经获得了两个异构体系列,其中 4-乙炔基吡啶单元分别在对位(对位系列 1-5)或间位(间位系列 6-10)与核心相连。使用机械控制的断键测量和密度泛函理论计算的组合实验和计算研究一致表明,与间位系列相比,对位系列的电导更高:这与对位系列中π-体系的共轭增加一致。在对位系列中,电导率按杂芳构性降低的顺序增加(二苯并噻吩<咔唑<二苯并呋喃)。然而,在间位系列中,顺序非常不同,其中二苯并噻吩≈二苯并呋喃<咔唑。理论和实验电导值之间具有极好的一致性。我们的研究表明,分子核心单元中的量子干涉和杂芳构性都在确定单分子结的电导方面起着重要且相互关联的作用。