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High electronic couplings of single mesitylene molecular junctions
- Source :
- Beilstein Journal of Nanotechnology, Beilstein Journal of Nanotechnology, Vol 6, Iss 1, Pp 2431-2437 (2015)
- Publication Year :
- 2015
-
Abstract
- We report on an experimental analysis of the charge transport properties of single mesitylene (1,3,5-trimethylbenzene) molecular junctions. The electronic conductance and the current–voltage characteristics of mesitylene molecules wired into Au electrodes were measured by a scanning tunnelling microscopy-based break-junction method at room temperature in a liquid environment. We found the molecular junctions exhibited two distinct conductance states with high conductance values of ca. 10−1G0 and of more than 10−3G0 (G0 = 2e2/h) in the electronic conductance measurements. We further performed a statistical analysis of the current–voltage characteristics of the molecular junctions in the two states. Within a single channel resonant tunnelling model, we obtained electronic couplings in the molecular junctions by fitting the current–voltage characteristics to the single channel model. The origin of the high conductance was attributed to experimentally obtained large electronic couplings of the direct π-bonded molecular junctions (ca. 0.15 eV). Based on analysis of the stretch length of the molecular junctions and the large electronic couplings obtained from the I–V analysis, we proposed two structural models, in which (i) mesitylene binds to the Au electrode perpendicular to the charge transport direction and (ii) mesitylene has tilted from the perpendicular orientation.
- Subjects :
- General Physics and Astronomy
lcsh:Chemical technology
Molecular physics
lcsh:Technology
Full Research Paper
mesitylene
chemistry.chemical_compound
Microscopy
Perpendicular
Molecule
Nanotechnology
General Materials Science
lcsh:TP1-1185
Electrical and Electronic Engineering
lcsh:Science
Mesitylene
Quantum tunnelling
lcsh:T
Conductance
single molecular junction
scanning tunnelling microscopy (STM)
lcsh:QC1-999
charge transport
Nanoscience
chemistry
Electrode
lcsh:Q
break junction
Atomic physics
Break junction
lcsh:Physics
Subjects
Details
- ISSN :
- 21904286
- Volume :
- 6
- Database :
- OpenAIRE
- Journal :
- Beilstein journal of nanotechnology
- Accession number :
- edsair.doi.dedup.....88b744ce6ba969eb9c941e92adab2a63