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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Comparative Electrochemical Scanning Tunneling Microscopy Study of Nonionic Fluorosurfactant Zonyl FSN Self-Assembled Monolayers on Au(111) and Au(100): A Potential-Induced Structural Transition
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Comparative Electrochemical Scanning Tunneling Microscopy Study of Nonionic Fluorosurfactant Zonyl FSN Self-Assembled Monolayers on Au(111) and Au(100): A Potential-Induced Structural Transition

机译:Au(111)和Au(100)上非离子型含氟表面活性剂Zonyl FSN自组装单层的比较电化学扫描隧道显微镜研究:电势诱导的结构转变

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We investigate the structure of nonionic fluorosurfactant zonyl FSN self-assembled monolayers on Au(111) and Au(100) in 0.05 M H_2SO_4 as a function of the electrode potential by electrochemical scanning tunneling microscopy (ECSTM). On Au(111), a (3~(1/2) × 3~(1/2))R30° arrangement of the FSN SAMs is observed, which remains unchanged in the potential range where the redox reaction of FSN molecules does not occur. On Au(100), some parallel corrugations of the FSN SAMs are observed, which originate from the smaller distance and the repulsive interaction between FSN molecules to make the FSN molecules deviate from the bridging sites, and ECSTM reveals a potential-induced structural transition of the FSN SAMs. The experimental observations are rationalized by the effect of the intermolecular interaction. The smaller distance between molecules on Au(100) results in the repulsive force, which increases the probability of structural change induced by external factors (i.e., the electrode potential). The appropriate distance and interactions of FSN molecules account for the stable structure of FSN SAMs on Au(111). Surface crystallography may influence the intermolecular interaction through changing the molecular arrangements of the SAMs. The results benefit the molecular-scale understanding of the behavior of the FSN SAMs under electrochemical potential control.
机译:我们通过电化学扫描隧道显微镜(ECSTM)研究了0.05 M H_2SO_4上Au(111)和Au(100)上的非离子型含氟表面活性剂唑啉FSN自组装单层结构与电极电位的关系。在Au(111)上观察到FSN SAMs的(3〜(1/2)×3〜(1/2))R30°排列,在FSN分子不发生氧化还原反应的电势范围内保持不变发生。在Au(100)上,观察到了一些FSN SAM的平行波纹,这些波纹起因于更短的距离和FSN分子之间的排斥相互作用,使FSN分子偏离了桥接位点,而ECSTM揭示了电势诱导的结构转变。 FSN SAM。通过分子间相互作用的影响使实验观察合理化。 Au(100)上分子之间的距离越小,排斥力越大,这就会增加由外部因素(即电极电势)引起的结构变化的可能性。 FSN分子的适当距离和相互作用说明了Au(111)上FSN SAM的稳定结构。表面晶体学可能会通过改变SAM的分子排列来影响分子间的相互作用。结果有利于分子尺度上对FSN SAMs在电化学电势控制下的行为的理解。

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