First-Principles Simulation of Scanning Tunneling Microscopy Images of Individual Molecules in Alkanethiol Self-Assembled Monolayers on Au(111)

The density functional theory calculations with local density approximation have been performed to simulate scanning tunneling microscopy (STM) images of individual molecules in close-packed upright alkanethiol self-assembled monolayers (SAMs) on a Au(111) surface. The internal patterns in the simul...

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Veröffentlicht in:The journal of physical chemistry. B 2003-01, Vol.107 (4), p.972-984
Hauptverfasser: Li, Bin, Zeng, Changgan, Li, Qunxiang, Wang, Bing, Yuan, Lanfeng, Wang, Haiqian, Yang, Jinlong, Hou, J. G, Zhu, Qingshi
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container_end_page 984
container_issue 4
container_start_page 972
container_title The journal of physical chemistry. B
container_volume 107
creator Li, Bin
Zeng, Changgan
Li, Qunxiang
Wang, Bing
Yuan, Lanfeng
Wang, Haiqian
Yang, Jinlong
Hou, J. G
Zhu, Qingshi
description The density functional theory calculations with local density approximation have been performed to simulate scanning tunneling microscopy (STM) images of individual molecules in close-packed upright alkanethiol self-assembled monolayers (SAMs) on a Au(111) surface. The internal patterns in the simulated STM images are dependent on bias voltage and alkanethiol chain length and have characteristics of the topographic effect modulated by the electronic effect. The electronic structure of the adsorption system is analyzed for discussing the STM imaging mechanism of alkanethiol SAMs. Besides enhancing the intermixing between the alkyl part and the Au substrate states, the sulfur atom in alkanethiol obviously influences the pattern in the STM image by its chemisorption mode on the Au(111) surface. Simulated images qualitatively reproduce STM experimental results.
doi_str_mv 10.1021/jp0261861
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title First-Principles Simulation of Scanning Tunneling Microscopy Images of Individual Molecules in Alkanethiol Self-Assembled Monolayers on Au(111)
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