Charge transport in molecular electronic junctions: Compression of the molecular tunnel barrier in the strong coupling regime

Перенос заряда в молекулярных электронных переходах: сжатие молекулярного туннельного барьера в режиме сильной связи
Sayed Y. Sayed, Jerry A. Fereiro, Haijun Yan, Richard L. McCreery, Adam Johan Bergren
2012-06-01

charge transportenergy level alignmentmolecular electronic junctionsstrong coupling regimetunneling barrier
Molecular junctions are essentially modified electrodes familiar to electrochemists where the electrolyte is replaced by a conducting "contact." It is generally hypothesized that changing molecular structure will alter system energy levels leading to a change in the transport barrier. Here, we show the conductance of seven different aromatic molecules covalently bonded to carbon implies a modest range (< 0.5 eV) in the observed transport barrier despite widely different free molecule HOMO energies (> 2 eV range). These results are explained by considering the effect of bonding the molecule to the substrate. Upon bonding, electronic inductive effects modulate the energy levels of the system resulting in compression of the tunneling barrier. Modification of the molecule with donating or withdrawing groups modulate the molecular orbital energies and the contact energy level resulting in a leveling effect that compresses the tunneling barrier into a range much smaller than expected. Whereas the value of the tunneling barrier can be varied by using a different class of molecules (alkanes), using only aromatic structures results in a similar equilibrium value for the tunnel barrier for different structures resulting from partial charge transfer between the molecular layer and the substrate. Thus, the system does not obey the Schottky-Mott limit, and the interaction between the molecular layer and the substrate acts to influence the energy level alignment. These results indicate that the entire system must be considered to determine the impact of a variety of electronic factors that act to determine the tunnel barrier.
1
Bonding molecules to the substrate induces electronic effects that compress the tunneling barrier and reduce the expected influence of molecular energy-level differences.
2
Different aromatic structures converge toward a similar equilibrium tunnel-barrier value, attributed to partial charge transfer between the molecular layer and substrate.
3
Electron-donating and electron-withdrawing substituents shift molecular orbitals and contact energy levels in a compensating, leveling manner.
4
Molecular junctions do not obey the Schottky–Mott limit; accurate barrier determination requires considering the coupled molecule–substrate system.
5
Seven aromatic molecules covalently bonded to carbon exhibit transport barriers varying by less than 0.5 eV, despite free-molecule HOMO energies spanning more than 2 eV.

Covalently bonded aromatic molecular electronic junctions with carbon electrodes

Compression and leveling of the molecular tunneling barrier through molecule–substrate electronic coupling and partial charge transfer

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2012-06-01
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Sayed Y. Sayed
Jerry A. Fereiro
Haijun Yan
Richard L. McCreery
Adam Johan Bergren
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