Spatially Correlated Charge Transport in Organic Thin Film Transistors
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- 19 March 2004
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 92 (11) , 116802
- https://doi.org/10.1103/physrevlett.92.116802
Abstract
Hole mobility in organic ultrathin film field-effect transistors is studied as a function of the coverage. For layered sexithienyl films, the charge carrier mobility rapidly increases with increasing coverage and saturates at a coverage of about two monolayers. This shows that the first two molecular layers next to the dielectric interface dominate the charge transport. A quantitative analysis of spatial correlations shows that the second layer is crucial, as it provides efficient percolation pathways for carriers generated in both the first and the second layers. The upper layers do not actively contribute either because their domains are smaller than the ones in the second layer or because the carrier density is negligible.Keywords
This publication has 25 references indexed in Scilit:
- Scaling behavior and parasitic series resistance in disordered organic field-effect transistorsApplied Physics Letters, 2003
- Field Effect Conductance Measurements on Thin Crystals of SexithiopheneThe Journal of Physical Chemistry B, 1999
- Essential Role of Correlations in Governing Charge Transport in Disordered Organic MaterialsPhysical Review Letters, 1998
- Mean-field theory for the spin-ladder systemPhysical Review B, 1998
- Oligophenyl-based organic thin film transistorsApplied Physics Letters, 1997
- Scaling Behavior of Anisotropic Organic Thin Films Grown in High VacuumPhysical Review Letters, 1997
- Transition to Multilayer Kinetic Roughening for Metal (100) HomoepitaxyPhysical Review Letters, 1995
- Growth of conjugated oligomer thin films studied by atomic-force microscopyPhysical Review B, 1995
- Organic Transistors: Two-Dimensional Transport and Improved Electrical CharacteristicsScience, 1995
- Charge Transport in Disordered Organic Photoconductors a Monte Carlo Simulation StudyPhysica Status Solidi (b), 1993