Single-molecule rectifiers based on voltage-dependent deformation of molecular orbitals in carbazole oligomers
ORAL
Abstract
Current-voltage characteristics of single molecule junctions are governed both by the energy level alignment of molecular orbitals with respect to the Fermi level of the electrodes and by the hybridization of electronic structures at the interface between the molecule and the electrodes. While there have been many studies on tuning the former, only a few works intended to control the latter. In the present study, we demonstrate that molecular junctions based on carbazole oligomers showed a current rectification behavior due to asymmetric-symmetric control of electronic hybridization between the molecule and electrodes at the both terminals. The carbazole oligomers originally showed an asymmetric molecular orbital and, hence, electronic hybridization with the electrodes because of the electric dipole moment. Symmetric electronic hybridization was achieved when the applied electric field between electrodes deformed molecular orbital to be symmetric. This is a novel way to control charge transport in single-molecule junctions (R. Yamada et al., Nanoscale, in press).
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Presenters
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Tatsuhiko Ohto
Graduate School of Engineering Science, Osaka University
Authors
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Tatsuhiko Ohto
Graduate School of Engineering Science, Osaka University
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Ken Albrecht
Laboratory for Chemistry and Life Science Institute of Innovative Research, Tokyo Institute of Technology
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Ryo Yamada
Graduate School of Engineering Science, Osaka University
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Keigo Minode
Graduate School of Engineering Science, Osaka University
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Kimihisa Yamamoto
Laboratory for Chemistry and Life Science Institute of Innovative Research, Tokyo Institute of Technology
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Hirokazu Tada
Graduate School of Engineering Science, Osaka University