Olavarría-Contreras Ignacio José, Etcheverry-Berríos Alvaro, Qian Wenjie, Gutiérrez-Cerón Cristian, Campos-Olguín Aldo, Sañudo E Carolina, Dulić Diana, Ruiz Eliseo, Aliaga-Alcalde Núria, Soler Monica, van der Zant Herre S J
Kavli Institute of Nanoscience , Delft University of Technology , Lorentzweg 1 , Delft 2628 CJ , The Netherlands . Email:
Departamento de Ingeniería Química , Biotecnología y Materiales , Facultad de Ciencias Físicas y Matemáticas , Universidad de Chile , Beauchef 851 , Santiago , Chile . Email:
Chem Sci. 2018 Jul 24;9(34):6988-6996. doi: 10.1039/c8sc02337a. eCollection 2018 Sep 14.
We have studied the single-molecule conductance of a family of curcuminoid molecules (CCMs) using the mechanically controlled break junction (MCBJ) technique. The CCMs under study contain methylthio (MeS-) as anchoring groups: MeS-CCM (), the free-ligand organic molecule, and two coordination compounds, MeS-CCM-BF () and MeS-CCM-Cu (), where ligand coordinates to a boron center (BF group) and to a Cu moiety, respectively. We found that the three molecules present stable molecular junctions allowing detailed statistical analysis of their electronic properties. Compound shows a slight increase in the conductance with respect to free ligand , whereas incorporation of BF (compound ) promotes the presence of two conductance states in the measurements. Additional experiments with control molecules point out that this bistability is related to the combination of MeS- anchoring groups and the BF moiety within the structure of the molecules. Theoretical calculations show that this can be explained by the presence of two conformers once compound is anchored between the gold electrodes. An energy minimum is found for a flat structure but there is a dramatic change in the magnitude and orientation of dipole moment (favouring a non-flat conformer in the presence of an external electric field) due to a conformational change of one of the terminal MeS- groups. The results thus point to an intricate interplay between the applied bias voltage and the molecule dipole moment which could be the basis for designing new molecules aiming at controlling their conformation in devices.
我们使用机械控制断裂结(MCBJ)技术研究了一类姜黄素类分子(CCMs)的单分子电导。所研究的CCMs包含甲硫基(MeS-)作为锚定基团:MeS-CCM()、游离配体有机分子以及两种配位化合物,MeS-CCM-BF()和MeS-CCM-Cu(),其中配体分别与硼中心(BF基团)和铜部分配位。我们发现这三种分子呈现出稳定的分子结,从而能够对其电子性质进行详细的统计分析。化合物相对于游离配体的电导略有增加,而引入BF(化合物)则导致测量中出现两种电导状态。对对照分子进行的额外实验表明,这种双稳态与分子结构中MeS-锚定基团和BF部分的组合有关。理论计算表明,这可以通过化合物锚定在金电极之间时存在两种构象异构体来解释。对于扁平结构发现了一个能量最小值,但由于末端MeS-基团之一的构象变化,偶极矩的大小和方向发生了巨大变化(在存在外部电场的情况下有利于非扁平构象异构体)。因此,结果表明施加的偏置电压与分子偶极矩之间存在复杂的相互作用,这可能是设计旨在控制其在器件中构象的新分子的基础。