Garner Marc H, Jensen Anders, Hyllested Louise O H, Solomon Gemma C
Department of Chemistry , Nano-Science Center , University of Copenhagen , Universitetsparken 5 , DK-2100 , Copenhagen Ø , Denmark . Email:
Chem Sci. 2019 Mar 19;10(17):4598-4608. doi: 10.1039/c8sc05464a. eCollection 2019 May 7.
Disubstituted odd-carbon cumulenes are linear carbon wires with near-degenerate helical π-orbitals. Such cumulenes are chiral molecules but their electronic structure consists of helical orbitals of both chiralities. For these helical molecular orbitals to give rise to experimentally observable effects, the near-degenerate orbitals of opposite helicities must be split. Here we show how pyramidalized single-faced π-donors, such as the amine substituent, provide a strategy for splitting the helical molecular orbitals. The chirality induced by the amine substituents allow for systematic control of the helicity of the frontier orbitals. We examine how the helical orbitals in odd-carbon cumulenes control the coherent electron transport properties, and we explicitly predict two modes in the experimental single-molecule conductance for these molecules. We also show that the current density through these linear wires exhibits strong circular currents. The direction of the circular currents is systematically controlled by the helicity of the frontier molecular orbitals, and is therefore altered by changing between the conformations of the molecule. Furthermore, the circular currents are subject to a full ring-reversal around antiresonances in the Landauer transmission, emphasizing the relation to destructive quantum interference. With circular currents present around truly linear carbon wires, cumulenes are promising candidates for novel applications in molecular electronics.
二取代奇数碳累积烯烃是具有近简并螺旋π轨道的线性碳链。这类累积烯烃是手性分子,但其电子结构由两种手性的螺旋轨道组成。为了使这些螺旋分子轨道产生可通过实验观测到的效应,必须拆分相反螺旋性的近简并轨道。在此,我们展示了诸如胺取代基这样的锥化单面π供体如何提供一种拆分螺旋分子轨道的策略。胺取代基诱导的手性使得能够系统地控制前沿轨道的螺旋性。我们研究了奇数碳累积烯烃中的螺旋轨道如何控制相干电子输运性质,并明确预测了这些分子在实验单分子电导中的两种模式。我们还表明,通过这些线性碳链的电流密度表现出强烈的圆电流。圆电流的方向由前沿分子轨道的螺旋性系统地控制,因此会因分子构象的变化而改变。此外,圆电流在朗道尔传输中的反共振处会发生完全的环反转,这突出了与破坏性量子干涉的关系。由于在真正的线性碳链周围存在圆电流,累积烯烃是分子电子学新应用的有前景的候选者。