Molecular Electronic Control Over Tunneling Charge Transfer Plasmons Modes
Tan, Shu Fen
Produktnummer:
18088ea9fc837e4cc9a89ad51b27d77ee3
Autor: | Tan, Shu Fen |
---|---|
Themengebiete: | Charge Transfer Plasmon Metal Nanoparticles Molecular Tunnel Junctions Quantum-Corrected Finite-Element-Model Quantum Mechanical Effects Quantum Plasmon Resonances Quantum Plasmon Tunneling Self-Assembled Monolayers (SAMs) Self-Assembly of Silver Nanoparticles Stability Nanoparticles under Electron Beam Irradiation |
Veröffentlichungsdatum: | 31.07.2018 |
EAN: | 9789811088025 |
Sprache: | Englisch |
Seitenzahl: | 115 |
Produktart: | Gebunden |
Verlag: | Springer Singapore |
Produktinformationen "Molecular Electronic Control Over Tunneling Charge Transfer Plasmons Modes"
This thesis describes the controlled immobilization of molecules between two cuboidal metal nanoparticles by means of a self-assembly method to control the quantum plasmon resonances. It demonstrates that quantum-plasmonics is possible at length scales that are useful for real applications. Light can interact with certain metals and can be captured in the form of plasmons, which are collective, ultra-fast oscillations of electrons that can be manipulated at the nano-scale. Surface plasmons are considered as a promising phenomenon for potentially bridging the gap between fast-operating-speed optics and nano-scale electronics. Quantum tunneling has been predicted to occur across two closely separated plasmonic resonators at length scales (<0.3 nm) that are not accessible using present-day nanofabrication techniques. Unlike top-down nanofabrication, the molecules between the closely-spaced metal nanoparticles could control the gap sizes down to sub-nanometer scales and actas the frequency controllers in the terahertz regime, providing a new control parameter in the fabrication of electrical circuits facilitated by quantum plasmon tunneling.

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