Double dative bond configuration: Pyrimidine on Ge(100)

Cited 36 time in webofscience Cited 40 time in scopus
  • Hit : 452
  • Download : 11
The adsorption of pyrimidine onto Ge(100) surfaces has been investigated using real-time scanning tunneling microscopy (STM), temperature-programmed desorption (TPD), and density-functional theory (DFT) calculations. Our results show that the adsorbed pyrimidine molecules are tilted about 40degrees with respect to the Ge surface, and through a Lewis acid-base reaction form bridges between the down-Ge atoms of neighboring Ge dimer rows by double Ge-N dative bonding without loss of aromaticity. For coverages of pyrimidine up to 0.25 ML, a well-ordered c(4x2) structure results from states that appear in STM micrographs as oval-shaped protrusions, which correspond to pyrimidine molecules datively adsorbed on every other dimer. However, above 0.25 ML, the oval-shaped protrusions gradually change into brighter zigzag lines. At 0.50 ML, a p(2x2) structure results from the states that appear in STM as zigzag lines. The zigzag lines are formed by the attachment of pyrimidine molecules to the down-Ge atoms of every Ge dimer. However, the unstable p(2x2) structure eventually reconstructs into a c(4x2) structure due to steric hindrance between the adsorbed pyrimidine molecules after stopping the exposure of pyrimidine to the surface.
Publisher
AMER CHEMICAL SOC
Issue Date
2005-01
Language
English
Article Type
Article
Keywords

SEMICONDUCTOR SURFACES; ORGANIC-MOLECULES; ADSORPTION; SI(100); CYCLOADDITION; MONOLAYERS; ATTACHMENT; PYRIDINE; SILICON; STATES

Citation

JOURNAL OF PHYSICAL CHEMISTRY B, v.109, no.1, pp.348 - 351

ISSN
1520-6106
DOI
10.1021/jp046947v
URI
http://hdl.handle.net/10203/10742
Appears in Collection
CH-Journal Papers(저널논문)
Files in This Item
This item is cited by other documents in WoS
⊙ Detail Information in WoSⓡ Click to see webofscience_button
⊙ Cited 36 items in WoS Click to see citing articles in records_button

qr_code

  • mendeley

    citeulike


rss_1.0 rss_2.0 atom_1.0