Room-temperature sub-diffraction-limited plasmon laser by total internal reflection
Top Cited Papers
- 19 December 2010
- journal article
- Published by Springer Nature in Nature Materials
- Vol. 10 (2) , 110-113
- https://doi.org/10.1038/nmat2919
Abstract
Plasmon lasers are a new class of coherent optical amplifiers that generate and sustain light well below its diffraction limit. Their intense, coherent and confined optical fields can enhance significantly light-matter interactions and bring fundamentally new capabilities to bio-sensing, data storage, photolithography and optical communications. However, metallic plasmon laser cavities generally exhibit both high metal and radiation losses, limiting the operation of plasmon lasers to cryogenic temperatures, where sufficient gain can be attained. Here, we present a room-temperature semiconductor sub-diffraction-limited laser by adopting total internal reflection of surface plasmons to mitigate the radiation loss, while using hybrid semiconductor-insulator-metal nanosquares for strong confinement with low metal loss. High cavity quality factors, approaching 100, along with strong λ/20 mode confinement, lead to enhancements of spontaneous emission rate by up to 18-fold. By controlling the structural geometry we reduce the number of cavity modes to achieve single-mode lasing.Keywords
All Related Versions
This publication has 25 references indexed in Scilit:
- Plasmonics for extreme light concentration and manipulationNature Materials, 2010
- Plasmonics beyond the diffraction limitNature Photonics, 2010
- Plasmon lasers at deep subwavelength scaleNature, 2009
- Demonstration of a spaser-based nanolaserNature, 2009
- Lasing in metal-insulator-metal sub-wavelength plasmonic waveguidesOptics Express, 2009
- Five-dimensional optical recording mediated by surface plasmons in gold nanorodsNature, 2009
- Heat-assisted magnetic recording by a near-field transducer with efficient optical energy transferNature Photonics, 2009
- PlasMOStor: A Metal−Oxide−Si Field Effect Plasmonic ModulatorNano Letters, 2009
- Biosensing with plasmonic nanosensorsNature Materials, 2008
- Surface Plasmon Amplification by Stimulated Emission of Radiation: Quantum Generation of Coherent Surface Plasmons in NanosystemsPhysical Review Letters, 2003