4.6 Article

Oligothiophene wires: impact of torsional conformation on the electronic structure

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 18, Issue 6, Pages 4842-4849

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c5cp07092a

Keywords

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Funding

  1. National Science Foundation [DMR-0960211]
  2. American Chemical Society Petroleum Research Fund [52732-DNI6]
  3. Center for Sustainable Materials Chemistry through the NSF CCI Grant [CHE-1102637]
  4. Deutsche Forschungsgemeinschaft (DFG) within the Cluster of Excellence cfaed
  5. Center for Hierarchical Manufacturing [CMMI-0531171]

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Charge transport in polymer-and oligomer-based semiconductor materials depends strongly on the structural ordering of the constituent molecules. Variations in molecular conformations influence the electronic structures of polymers and oligomers, and thus impact their charge-transport properties. In this study, we used Scanning Tunneling Microscopy and Spectroscopy (STM/STS) to investigate the electronic structures of different alkyl-substituted oligothiophenes displaying varied torsional conformations on the Au(111) surface. STM imaging showed that on Au(111), oligothiophenes self-assemble into chain-like structures, binding to each other via interdigitated alkyl ligands. The molecules adopted distinct planar conformations with alkyl ligands forming cis- or trans- mutual orientations. For each molecule, by using STS mapping, we identify a progression of particle-in-a-box-like states corresponding to the LUMO, LUMO+1 and LUMO+2 orbitals. Analysis of STS data revealed very similar unoccupied molecular orbital energies for different possible molecular conformations. By using density functional theory calculations, we show that the lack of variation in molecular orbital energies among the different oligothiophene conformers implies that the effect of the Au-oligothiophene interaction on molecular orbital energies is nearly identical for all studied torsional conformations. Our results suggest that cis- trans torsional disorder may not be a significant source of electronic disorder and charge carrier trapping in organic semiconductor devices based on oligothiophenes.

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