Percolation model for electron conduction in films of metal nanoparticles linked by organic molecules
- 26 August 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 66 (7) , 075417
- https://doi.org/10.1103/physrevb.66.075417
Abstract
We have investigated theoretically and experimentally the temperature dependence of the conductance of films of Au nanoparticles linked by alkane dithiol molecules in the temperature range between 5 and 300 K. Conduction in these films is due to tunneling of single electrons between neighboring metal nanoparticles via the linker molecules. During tunneling an electron has to overcome the Coulomb charging energy. We find that the observed temperature dependence of the conductance is non-Arrhenius-like and can be described in terms of a percolation theory which takes account of disorder in the system. Disorder in our nanoparticle films is caused by variations in the nanoparticle size, fluctuations in the separation gaps between adjacent nanoparticles and by offset charges. To explain in detail our experimental data, a wide distribution of separation gaps and charging energies has to be assumed. We find that a wide Coulomb charging energy distribution can arise from random offset charges even if the nanoparticle size distribution is narrow.Keywords
This publication has 20 references indexed in Scilit:
- Studies on Charge Transport in Self-Assembled Gold−Dithiol Films: Conductivity, Photoconductivity, and Photoelectrochemical MeasurementsLangmuir, 2000
- Random background charges and Coulomb blockade in one-dimensional tunnel junction arraysPhysical Review B, 2000
- Temperature behavior of multiple tunnel junction devices based on disordered dot arraysJournal of Applied Physics, 2000
- Single-electron devices and their applicationsProceedings of the IEEE, 1999
- Effects of disorder on the blockade voltage of two-dimensional quantum dot arraysJournal of Applied Physics, 1998
- Electron transport in metallic dot arrays: Effect of a broad dispersion in the tunnel junction dimensionsJournal of Applied Physics, 1998
- NANOCRYSTAL SUPERLATTICESAnnual Review of Physical Chemistry, 1998
- Electron conduction in molecular wires. II. Application to scanning tunneling microscopyThe Journal of Chemical Physics, 1994
- Collective transport in arrays of small metallic dotsPhysical Review Letters, 1993
- Molecular Vibration Spectra by Inelastic Electron TunnelingPhysical Review B, 1968