Charge transport and magnetoresistance of G4-DNA molecular device modulated by counter ions and dephasing effect
The charge transport properties of the G4-DNA molecular device in the presence of counter ions and dephasing effect are investigated based on the Green function method and Landauer–Büttiker theory. The currents through the G4-DNA molecular device depend on the interference patterns at different coup...
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Veröffentlicht in: | Physics letters. A 2016-02, Vol.380 (7-8), p.977-982 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The charge transport properties of the G4-DNA molecular device in the presence of counter ions and dephasing effect are investigated based on the Green function method and Landauer–Büttiker theory. The currents through the G4-DNA molecular device depend on the interference patterns at different coupling configurations. There is an effective electrostatic interaction between the counter ions and the G4-DNA molecule which introduces disorder into the on-site energies of G bases. The current through the device can be enhanced by the small disorder which avoids the strong interference of electrons at the same energy in some coupling configurations, however the diagonal disorder can suppress the overall current due to the Anderson localization of charge carriers when the disorder is large. In the presence of dephasing effect the current through the device at all coupling configurations can be enhanced as a result of the phase coherence losing of electron. As for the magnetic field response, the magnetoresistance of the device is always suppressed by the counter ions and dephasing effect.
•The counter ions can some times enhance the current through G4-DNA molecule.•The dephasing effect can enhance the current of the device at all four coupling configurations.•The magnetoresistance is always suppressed by the counter ions and dephasing effect. |
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ISSN: | 0375-9601 1873-2429 |
DOI: | 10.1016/j.physleta.2015.12.042 |