Non–diffraction-limited light transport by gold nanowires
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- 1 December 2002
- journal article
- Published by IOP Publishing in Europhysics Letters
- Vol. 60 (5), 663-669
- https://doi.org/10.1209/epl/i2002-00360-9
Abstract
We show that metal nanowires sustaining collective electron oscillations (surface plasmon polaritons) can be used as optical waveguides. Thereby, the use of a metal allows to overcome the limitations of miniaturization imposed on conventional dielectric waveguides due to diffraction. To demonstrate this effect we investigate a 200 nm wide and 50 nm high gold nanowire locally excited at a light wavelength of 800 nm. By direct imaging the optical near-field with subwavelength-resolution photon scanning tunneling microscopy we observe light transport along the nanowire over a distance of a few μm. Besides the realization of unprecedented integration densities of photonic devices, metal nanowires could be effectively used to optically address individual nanostructures or molecules.Keywords
This publication has 21 references indexed in Scilit:
- Near-field observation of evanescent light wave coupling in subwavelength optical waveguidesEurophysics Letters, 2002
- Addressing and imaging high optical index dielectric ridges in the optical near fieldPhysical Review E, 2001
- Surface plasmon polariton propagation across a gentle silver stepSurface Science, 2001
- Waveguiding in Surface Plasmon Polariton Band Gap StructuresPhysical Review Letters, 2001
- Lithographic antennas at visible frequenciesOptics Letters, 1999
- Plasmon polaritons of metallic nanowires for controlling submicron propagation of lightPhysical Review B, 1999
- Laser-frequency mixing in a scanning tunneling microscope at 1.3 μmJournal of Applied Physics, 1999
- Extraordinary optical transmission through sub-wavelength hole arraysNature, 1998
- Guiding of a one-dimensional optical beam with nanometer diameterOptics Letters, 1997
- Laser-frequency mixing in a scanning force microscope and its application to detect local conductivityJournal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures, 1994