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Terthiophene on Au(111): A scanning tunneling microscopy and spectroscopy study

机译:Au(111)上的对噻吩:扫描隧道显微镜和光谱学研究

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摘要

Terthiophene (3T) molecules adsorbed on herringbone (HB) reconstructed Au(111) surfaces in the low coverage regime were investigated by means of low-temperature scanning tunneling microscopy (STM) and spectroscopy (STS) under ultra-high vacuum conditions. The 3T molecules adsorb preferentially in fcc regions of the HB reconstruction with their longer axis oriented perpendicular to the soliton walls of the HB and at maximum mutual separation. The latter observation points to a repulsive interaction between molecules probably due to parallel electrical dipoles formed during adsorption. Constant-separation (I-V) and constant-current (z-V) STS clearly reveal the highest occupied (HOMO) and lowest unoccupied (LUMO) molecular orbitals, which are found at −1.2 eV and +2.3 eV, respectively. The HOMO–LUMO gap corresponds to that of a free molecule, indicating a rather weak interaction between 3T and Au(111). According to conductivity maps, the HOMO and LUMO are inhomogeneously distributed over the adsorbed 3T, with the HOMO being located at the ends of the linear molecule, and the LUMO symmetrically with respect to the longer axis of the molecule at the center of its flanks. Analysis of spectroscopic data reveals details of the contrast mechanism of 3T/Au(111) in STM. For that, the Shockley-like surface state of Au(111) plays an essential role and appears shifted outwards from the surface in the presence of the molecule. As a consequence, the molecule can be imaged even at a tunneling bias within its HOMO–LUMO gap. A more quantitative analysis of this detail resolves a previous discrepancy between the fairly small apparent STM height of 3T molecules (1.4–2.0 nm, depending on tunneling bias) and a corresponding larger value of 3.5 nm based on X-ray standing wave analysis. An additionally observed linear decrease of the differential tunneling barrier at positive bias when determined on top of a 3T molecule is compared to the bias independent barrier obtained on bare Au(111) surfaces. This striking difference of the barrier behavior with and without adsorbed molecules is interpreted as indicating an adsorption-induced dimensionality transition of the involved tunneling processes.
机译:在超高真空条件下,通过低温扫描隧道显微镜(STM)和光谱学(STS)研究了在低覆盖范围内人字形(HB)重建的Au(111)表面吸附的对噻吩(3T)分子。 3T分子优先吸附在HB重建的fcc区域中,其长轴垂直于HB的孤子壁并以最大相互分离的方向取向。后一个观察结果表明分子之间的排斥相互作用可能是由于吸附过程中形成的平行电偶极子引起的。恒定分离(I-V)和恒定电流(z-V)STS清楚地揭示了最高占据(HOMO)和最低未占据(LUMO)分子轨道,分别位于-1.2 eV和+2.3 eV。 HOMO-LUMO间隙对应于自由分子的间隙,表明3T和Au(111)之间的相互作用较弱。根据电导率图,HOMO和LUMO不均匀地分布在吸附的3T上,HOMO位于线性分子的末端,LUMO相对于分子的长轴对称于其侧面。光谱数据分析揭示了STM中3T / Au(111)的对比机理的细节。为此,Au(111)的肖克利状表面状态起着至关重要的作用,并且在分子存在下似乎从表面向外移位。结果,即使在其HOMO-LUMO间隙内的隧穿偏压下,该分子也可以成像。对这个细节进行更定量的分析,可以解决以前在3T分子的相当小的表观STM高度(1.4-2.0 nm,取决于隧穿偏差)与基于X射线驻波分析的相应较大值3.5 nm之间的先前差异。当在3T分子的顶部确定时,在正偏压下另外观察到的差分隧穿势垒的线性下降与在裸Au(111)表面上获得的与偏压无关的势垒进行了比较。在有和没有吸附分子的情况下,阻隔行为的显着差异被解释为表明了所涉及的隧穿过程的吸附诱导的尺寸转变。

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