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首页> 外文期刊>Bulletin of the Korean Chemical Society >Surface Structures and Thermal Desorption Behaviors of Cyclopentanethiol Self-Assembled Monolayers on Au(111)
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Surface Structures and Thermal Desorption Behaviors of Cyclopentanethiol Self-Assembled Monolayers on Au(111)

机译:环戊烷硫醇自组装单分子膜在Au(111)上的表面结构和热脱附行为

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The surface structures, adsorption conditions, and thermal desorption behaviors of cyclopentanethiol (CPT) self-assembled monolayers (SAMs) on Au(111) were investigated by scanning tunneling microscopy (STM), X-ray photoelectron spectroscopy (XPS), and thermal desorption spectroscopy (TDS). STM imaging revealed that although the adsorption of CPT on Au(111) at room temperature generates disordered SAMs, CPT molecules at 50 °C formed well-ordered SAMs with a (2√3 × √5)R41o packing structure. XPS measurements showed that CPT SAMs at room temperature were formed via chemical reactions between the sulfur atoms and gold surfaces. TDS measurements showed two dominant TD peaks for the decomposed fragments (C5H9 +, m/e = 69) generated via C-S bond cleavage and the parent molecular species (C5H9SH+, m/e = 102) derived from a recombination of the chemisorbed thiolates and hydrogen atoms near 440 K. Interestingly, dimerization of sulfur atoms in n-alkanethiol SAMs usually occurs during thermal desorption and the same reaction did not happen for CPT SAMs, which may be due to the steric hindrance of cyclic rings of the CPT molecules. In this study, we demonstrated that the alicyclic ring of organic thiols strongly affected the surface structure and thermal desorption behavior of SAMs, thus providing a good method for controlling chemical and physical properties of organic thiol SAMs.
机译:通过扫描隧道显微镜(STM),X射线光电子能谱(XPS)和热脱附研究了环戊硫醇(CPT)自组装单分子膜(SAM)在Au(111)上的表面结构,吸附条件和热脱附行为光谱(TDS)。 STM成像显示,尽管室温下CPT在Au(111)上的吸附会产生无序的SAM,但CPT分子在50°C时会形成具有(2√3×√5)R41o堆积结构的有序SAM。 XPS测量表明,室温下的CPT SAM是通过硫原子与金表面之间的化学反应形成的。 TDS测量显示了通过CS键裂解产生的分解片段(C5H9 +,m / e = 69)的两个主要TD峰以及从化学吸附的硫醇盐和氢的重组衍生而来的母体分子种类(C5H9SH +,m / e = 102)有趣的是,正链烷硫醇SAM中的硫原子通常在热脱附过程中发生二聚,而CPT SAM不会发生相同的反应,这可能是由于CPT分子环的空间位阻所致。在这项研究中,我们证明了有机硫醇的脂环环强烈影响SAM的表面结构和热脱附行为,从而为控制有机硫醇SAM的化学和物理性质提供了一种很好的方法。

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