DocumentCode :
1128027
Title :
Plasmonic Laser Antennas and Related Devices
Author :
Cubukcu, Ertugrul ; Yu, Nanfang ; Smythe, Elizabeth J. ; Diehl, Laurent ; Crozier, Kenneth B. ; Capasso, Federico
Author_Institution :
Sch. of Eng. & Appl. Sci., Harvard Univ., Cambridge, MA
Volume :
14
Issue :
6
fYear :
2008
Firstpage :
1448
Lastpage :
1461
Abstract :
This paper reviews recent work on device applications of optical antennas. Localized surface plasmon resonances of gold nanorod antennas resting on a silica glass substrate were modeled by finite difference time-domain simulations. A single gold nanorod of length 150 or 550 nm resonantly generates enhanced near fields when illuminated with light of 830 nm wavelength. A pair of these nanorods gives higher field enhancements due to capacitive coupling between them. Bowtie antennas that consist of a pair of triangular gold particles offer the best near-field confinement and enhancement. Plasmonic laser antennas based on the coupled nanorod antenna design were fabricated by focused ion beam lithography on the facet of a semiconductor laser diode operating at a wavelength of 830 nm. An optical spot size of few tens of nanometers was measured by apertureless near-field optical microscope. We have extended our work on plasmonic antenna into mid-infrared (mid-IR) wavelengths by implementing resonant nanorod and bowtie antennas on the facets of various quantum cascade lasers. Experiments show that this mid-IR device can provide an optical intensity confinement 70 times higher than that would be achieved with diffraction limited optics. Near-field intensities ~ 1 GW/cm2 were estimated for both near-infrared and mid-IR plasmonic antennas. A fiber device that takes advantage of plasmonic resonances of gold nanorod arrays providing a high density of optical ldquohot spotsrdquo is proposed. Results of a systematic theoretical and experimental study of the reflection spectra of these arrays fabricated on a silica glass substrate are also presented. The family of these proof-of-concept plasmonic devices that we present here can be potentially useful in many applications including near-field optical microscopes, high-density optical data storage, surface enhanced Raman spectroscopy, heat-assisted magnetic recording, and spatially resolved absorption spectroscopy.
Keywords :
antennas; finite difference time-domain analysis; focused ion beam technology; gold; integrated optics; nanoparticles; optical microscopy; optical storage; quantum cascade lasers; semiconductor lasers; surface enhanced Raman scattering; surface plasmon resonance; Au-SiO2; SiO2; apertureless near-field optical microscope; bowtie antennas; coupled nanorod antenna design; finite difference time-domain simulations; focused ion beam lithography; gold nanorod antennas; heat-assisted magnetic recording; high-density optical data storage; localized surface plasmon resonances; mid-IR plasmonic antennas; near-field optical microscopes; near-infrared plasmonic antennas; optical hot spots; optical intensity confinement; optical spot size; plasmonic laser antennas; quantum cascade lasers; resonant nanorod; semiconductor laser diode; silica glass substrate; size 150 nm; size 550 nm; spatially resolved absorption spectroscopy; surface enhanced Raman spectroscopy; wavelength 830 nm; Gold nanoparticles; near-field optics; surface plasmons (SPs); surface-enhanced Raman spectroscopy (SERS);
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2007.912747
Filename :
4487142
Link To Document :
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