首页> 外文期刊>The Journal of Chemical Physics >Conformations and charge transport characteristics of biphenyldithiol self-assembled-monolayer molecular electronic devices: A multiscale computational study - art. no. 244703
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Conformations and charge transport characteristics of biphenyldithiol self-assembled-monolayer molecular electronic devices: A multiscale computational study - art. no. 244703

机译:联苯二硫醇自组装单分子分子电子器件的构型和电荷传输特性:多尺度计算研究-艺术。没有。 244703

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We report a computational study of conformations and charge transport characteristics of biphenyldithiol (BPDT) monolayers in the (root 3 X root 3) R30 degrees packing ratio sandwiched between Au(111) electrodes. From force-field molecular-dynamics and annealing simulations of BPDT self-assembled monolayers (SAMs) with up to 100 molecules on a Au (111) substrate, we identify an energetically favorable herringbone-type SAM packing configuration and a less-stable parallel packing configuration. Both SAMs are described by the (2 root 3 X root 3)R30 degrees unit cell including two molecules. With subsequent density-functional theory calculations of one unit cell of the (i) herringbone SAM with the molecular tilt angle theta approximate to 15 degrees, (ii) herringbone SAM with theta approximate to 30 degrees, and (iii) parallel SAM with theta approximate to 30 degrees, we confirm that the herringbone packing configuration is more stable than the parallel one but find that the energy variation with respect to the molecule tilting within the herringbone packing is very small. Next, by capping these SAMs with the top Au(111) electrode, we prepare three molecular electronic device models and calculate their coherent charge transport properties within the matrix Green's function approach. Current-voltage (I-V) curves are then obtained via the Landauer-Buttiker formula. We find that at low-bias voltages (vertical bar V vertical bar less than or similar to 0.2 V) the I-V characteristics of models (ii) and (iii) are similar and the current in model (i) is smaller than that in (ii) and (iii) . On the other hand, at higher-bias voltages (vertical bar V vertical bar less than or similar to 0.5 V), the I-V characteristics of the three models show noticeable differences due to different phenyl band structures. We thus conclude that the BPDT SAM I-V characteristics in the low-bias voltage region are mainly determined by the Si - Au interaction within the individual molecule-electrode contact, while both intramolecular conformation and intermolecular interaction can affect the BPDT SAM I-V characteristics in the high-bias voltage region. (c) 2005 American Institute of Physics.
机译:我们报告的构象和电荷转移特性的联苯二硫醇(BPDT)单层在(根3 X根3)R30度堆积比夹在Au(111)电极之间的电荷传输特性的计算研究。通过力场分子动力学和在Au(111)基底上具有多达100个分子的BPDT自组装单分子膜(SAMs)的退火模拟,我们确定了在能量上有利的人字形SAM堆积结构和不太稳定的平行堆积组态。两种SAM均由(2根3 X根3)R30度晶胞描述,其中包括两个分子。随后的密度泛函理论计算是(i)人字形SAM的分子倾斜角theta约为15度,(ii)人字形SAM的theta约为30度,以及(iii)平行SAM的theta近似在30度到30度之间,我们确认人字形填充结构比平行形更稳定,但是发现相对于人字形填充内部分子倾斜的能量变化很小。接下来,通过用顶部Au(111)电极覆盖这些SAM,我们准备了三个分子电子器件模型,并在矩阵格林函数方法内计算了它们的相干电荷传输性质。然后通过Landauer-Buttiker公式获得电流-电压(I-V)曲线。我们发现在低偏置电压下(垂直线V垂直线小于或类似于0.2 V),模型(ii)和(iii)的IV特性相似,模型(i)的电流小于( ii)和(iii)。另一方面,在较高偏置电压下(垂直线V垂直线小于或类似于0.5 V),由于不同的苯基带结构,这三个模型的I-V特性显示出明显的差异。因此,我们得出的结论是,低偏置电压区域中的BPDT SAM IV特性主要由单个分子-电极接触内的Si-Au相互作用决定,而分子内构象和分子间相互作用均可影响高电压下的BPDT SAM IV特性。 -偏置电压区域。 (c)2005年美国物理研究所。

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