Quantum Plasmon Resonances Controlled by Molecular Tunnel Junctions
Квантовые плазмонные резонансы, управляемые молекулярными туннельными переходами
2014-03-27
SCID: 54.1/99ccd84r
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electron energy-loss spectroscopymolecular tunnel junctionsquantum plasmon resonancesself-assembled monolayerstunneling charge transfer plasmon
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Abstract (AI)
Quantum tunneling between two plasmonic resonators links nonlinear quantum optics with terahertz nanoelectronics. We describe the direct observation of and control over quantum plasmon resonances at length scales in the range 0.4 to 1.3 nanometers across molecular tunnel junctions made of two plasmonic resonators bridged by self-assembled monolayers (SAMs). The tunnel barrier width and height are controlled by the properties of the molecules. Using electron energy-loss spectroscopy, we directly observe a plasmon mode, the tunneling charge transfer plasmon, whose frequency (ranging from 140 to 245 terahertz) is dependent on the molecules bridging the gaps.
Key Findings
1
Electron energy-loss spectroscopy directly detected a tunneling charge-transfer plasmon mode with frequencies from 140 to 245 terahertz.
2
Molecular properties control both the tunnel-barrier width and height in these plasmonic junctions.
3
Quantum plasmon resonances were directly observed across molecular tunnel junctions with gap lengths of 0.4–1.3 nanometers.
4
The charge-transfer plasmon frequency depends on the molecules bridging the plasmonic gaps, demonstrating molecular control of quantum plasmon resonances.
5
The junctions consist of two plasmonic resonators bridged by self-assembled monolayers, enabling quantum tunneling between the resonators.
Research Object
Molecular tunnel junctions consisting of two plasmonic resonators bridged by self-assembled monolayers
Research Subject
Control and molecular dependence of quantum plasmon resonances, including the frequency of the tunneling charge transfer plasmon mode
Publication Details
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2014-03-27
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