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首页> 外文期刊>Nanotechnology >Accurate determination of multiple sets of single molecular conductance of Au/1,6-hexanedithiol/Au break junctions by ultra-high vacuum-scanning tunneling microscope and analyses of individual current-separation curves
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Accurate determination of multiple sets of single molecular conductance of Au/1,6-hexanedithiol/Au break junctions by ultra-high vacuum-scanning tunneling microscope and analyses of individual current-separation curves

机译:超高真空扫描隧道显微镜准确测定Au / 1,6-己二硫醇/ Au断裂键的多组单分子电导并分析单独的电流分离曲线

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摘要

The effect of the binding sites of the terminal groups - S on gold on currents through a single molecular junction (MJ) of Au/1,6-hexanedithiol/Au was studied by measuring current-separation (is) curves during repeated formation of a break junction in UHV-STM. Three different single molecular conductance (SMC) values (i.e. G_m(HC), G_m(MC) and G_m(LC)) were found by a careful analysis of corrected current histograms for background tunneling currents using a previously developed robust statistical analysis. Here, HC, MC and LC represent a single MJ with high, medium and low conductance, respectively. These three SMC values are attributed to three different contact modes (i.e. strong-strong, strong-weak (or weak-strong) and weak-weak bindings at the two ends). In addition to these three SMC values due to the different contacts, another lower SMC value was newly observed in the corrected histogram. The presence of the fourth SMC is specific to MJs of alkanedithiols and is attributable to LC of a single alkylene chain with gauche rich conformation, which has a lower SMC value than that of LC with all-trans conformation as proposed previously (Fujihira M et al 2006 Phys. Chem. Chem. Phys. 8 3876). Due to the effects of the contact and the conformational change, it was difficult to determine six different SMC values corresponding to two different conformations (i.e. gauche-rich versus all-trans) with three different contacts (i.e. HC, MC and LC). In addition to this complexity, the current steps corresponding to HC, MC and LC almost always appeared in this order in measured is curves during separation. The current step observed here could not only be a contribution from a single molecule, but also contributions from a few groups of molecules that happen to link gold atoms of the substrate with those of the tip apex. Therefore, the SMC value for HC obtained as a peak or a set of peaks in the current histogram could be based upon the sum of the current of HC and those of MCs and LCs coexisting in parallel, unless every MJ would change successively from HC to MC and MC to LC. Namely, the currents through coexisting MCs and LCs would raise the intrinsic current observed for HC itself, while those through coexisting LCs would raise the intrinsic current for MC. To avoid such errors in determining the true SMC, we demonstrate here a new method based upon analyses of individual is curves referred to as jump height analyses of individual is curves. By this method, the true SMC of LC(all-trans) was determined to be 1.6 nS (i.e. G_m (LC, all-trans) of 2.1 x 10~(-5)G_o) without ambiguity in spite of the possible presence of LCs(gauche rich) in parallel.
机译:通过测量在重复形成a期间的电流分离(is)曲线,研究了末端基团-S在金上的结合位点对通过Au / 1,6-己二硫醇/ Au的单分子结(MJ)的电流的影响。在UHV-STM中断开连接。通过使用先前开发的稳健统计分析对背景隧道电流的校正电流直方图进行仔细分析,发现了三个不同的单分子电导(SMC)值(即G_m(HC),G_m(MC)和G_m(LC))。此处,HC,MC和LC分别代表具有高,中和低电导率的单个MJ。这三个SMC值归因于三种不同的接触方式(即两端的强-强,强-弱(或弱-强)和弱-弱结合)。除了由于接触不同而产生的这三个SMC值之外,在校正的直方图中新观察到了另一个更低的SMC值。第四SMC的存在是链烷二硫醇的MJ特有的,并且归因于具有高士奇构型的单亚烷基链的LC,其SMC值低于先前提出的全反构象的LC(SMC) 2006 Phys.Chem.Chem.Phys.8 3876)。由于接触和构象变化的影响,很难确定六个不同的SMC值,它们对应于具有三个不同接触(即HC,MC和LC)的两个不同构象(即富脂纱蛋白与全反式)。除了这种复杂性外,与HC,MC和LC对应的当前步骤几乎总是以这种顺序出现在分离过程中的测量曲线中。此处观察到的当前步骤不仅可能是单个分子的贡献,还可能是少数几组分子的贡献,这些分子恰好将底物的金原子与尖端的金原子连接起来。因此,在当前直方图中作为峰或一组峰获得的HC的SMC值可以基于HC电流与并行存在的MC和LC的电流之和,除非每个MJ都会从HC依次变为HC。 MC和MC到LC。即,通过共存的MC和LC的电流会增加对HC本身观察到的固有电流,而通过共存的LC的电流会增加MC的固有电流。为了避免在确定真实SMC时出现此类错误,我们在此处演示了一种基于对个体曲线的分析的新方法,称为对个体曲线的跳跃高度分析。通过这种方法,尽管可能存在LC(全反)的真实SMC,但不含歧义性仍被确定为1.6 nS(即G_m(LC,全反)为2.1 x 10〜(-5)G_o)。并行LC(浓脂糖)。

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