Showing posts with label Nanoplasmonics. Show all posts
Showing posts with label Nanoplasmonics. Show all posts

Wednesday, November 5, 2014

Abstract-Nanoplasmonics enhanced terahertz sources



Afshin Jooshesh, Levi Smith, Mostafa Masnadi-Shirazi, Vahid Bahrami-Yekta, Thomas Tiedje, Thomas E. Darcie, and Reuven Gordon  »View Author Affiliations
http://www.opticsinfobase.org/oe/abstract.cfm?uri=oe-22-23-27992
Optics Express, Vol. 22, Issue 23, pp. 27992-28001 (2014)
http://dx.doi.org/10.1364/OE.22.027992

Arrayed hexagonal metal nanostructures are used to maximize the local current density while providing effective thermal management at the nanoscale, thereby allowing for increased emission from photoconductive terahertz (THz) sources. The THz emission field amplitude was increased by 60% above that of a commercial THz photoconductive antenna, even though the hexagonal nanostructured device had 75% of the bias voltage. The arrayed hexagonal outperforms our previously investigated strip array nanoplasmonic structure by providing stronger localization of the current density near the metal surface with an operating bandwidth of 2.6 THz. This approach is promising to achieve efficient THz sources.
© 2014 Optical Society of America

Monday, November 26, 2012

Abstract-Nanoplasmonic Terahertz Photoconductive Switch on GaAs


Barmak Heshmat , Hamid Pahlevaninezhad , Yuanjie Pang , Mostafa Masnadi Shirazi , Ryan B. Lewis , Thomas Tiedje , Reuven Gordon , and Thomas E. Darcie
http://pubs.acs.org/doi/abs/10.1021/nl303314a
Low-temperature (LT) grown GaAs has a sub-picosecond carrier response time that makes it favorable for terahertz photoconductive (PC) switching. However, this is obtained at the price of lower mobility and lower thermal conductivity than GaAs. Here we demonstrate sub-picosecond carrier sweep-out and over an order of magnitude higher sensitivity in detection from a GaAs-based PC switch by using a nanoplasmonic structure. As compared to a conventional GaAs PC switch, we observe 40 times the peak-to-peak response from the nanoplasmonic structure on GaAs. The response is double that of a commercial, antireflection coated LT-GaAs PC switch.

Friday, June 29, 2012

Abstract-Active nanoplasmonic metamaterials (bridging gap between conventional optics and the nanoworld)

(ad, Successive steps in the fabrication of an active negative-refractive-index 'double-fishnet' metamaterial. )
O. Hess, J. B. Pendry, S. A. Maier, R. F. Oulton, J. M. Hamm,  K. L. Tsakmakidis   

Optical metamaterials and nanoplasmonics bridge the gap between conventional optics and the nanoworld. Exciting and technologically important capabilities range from subwavelength focusing and stopped light to invisibility cloaking, with applications across science and engineering from biophotonics to nanocircuitry. A problem that has hampered practical implementations have been dissipative metal losses, but the efficient use of optical gain has been shown to compensate these and to allow for loss-free operation, amplification and nanoscopic lasing. Here, we review recent and ongoing progress in the realm of active, gain-enhanced nanoplasmonic metamaterials. On introducing and expounding the underlying theoretical concepts of the complex interaction between plasmons and gain media, we examine the experimental efforts in areas such as nanoplasmonic and metamaterial lasers. We underscore important current trends that may lead to improved active imaging, ultrafast nonlinearities on the nanoscale or cavity-free lasing in the stopped-light regime

Monday, October 31, 2011

Plasmonics can Enable all Optical Switching for a Terahertz Bandwidth


http://futuretechnologytrends.com/2011/10/plasmonics-can-enable-optical-switching-for-a-terahertz-bandwidth/
10/28/2011, 10:08 am
Electronic components are shrinking down to extremely small sizes. Currently, cutting-edge processors utilize the 22-nanometer node. This will further scale down over the next decade or so. Silicon has enabled researchers to construct complicated microchips that have billions of units. The doubling pace of fitting miniature devices on a single CPU has slowed somewhat. In the next ten years, the amount of transistors on an integrated circuit probably won’t change as much as in previous decades. Scientists are just not attaining the energy savings, as sizes get smaller (see dark silicon). Photonics is a potential route to overcome a few of these limitations. One main issue with this is the diffraction limit whereby light cannot confine to a location that is much smaller than its wavelength. This makes it difficult to compete with electronics for certain applications. Electrical signals move nearly at the speed of light as well. The benefit of photonics is partially due to the higher frequencies that are considered achievable.

Academics are building optical switches that could allow for a dense integration. There is hope that this may surpass electronic parts in some arenas. They must be greater than the gigahertz performance of electronics to be competitive. To reach this state, a nonlinear switching medium is necessary that has an ultra-fast response. Plasmonics is a way of constraining electromagnetic wave frequencies to a smaller area. A plasmon is a surface oscillation in the density of charge on a conductor-dielectric interface. A quasiparticle called a plasmon polariton couples a photon to a plasmon. These techniques may reduce the size of interconnect links. It could be a method of routing information swiftly on a chip.

Researchers from the University of Southampton along with other collaborators have demonstrated a suitable switching material. This work was published in the journal Advanced Materials. They make the part with a nanostructured gold film. They claim that this device is over one order of magnitude faster than past designs. The speed is in the terahertz range, which is many times what electronics can do. They control light in a 50 nanometer thick region and the light power is only a few milliwatts. Perhaps this can lead to upgraded optical data processing. Integrating electrical and photonic circuitry may become easier to carry out. This might not be a cheap enough. It will possibly be utilized for specific niches where a quicker cycling is crucial. Consumer items would need to have less expensive compounds. There may be many other drawbacks, which prevent this from finding many uses.

The paper is about a nanostructured plasmonic medium for terahertz bandwidth all-optical switching.

Friday, September 23, 2011

Optical Materials Express Focus Issue: Nanoplasmonics and Metamaterials



Research highlights advances in nano-optics
WASHINGTON--(BUSINESS WIRE)--Light-matter interaction at the nanometer scale has turned into a very fast-growing field of research known as nano-optics. To highlight breakthroughs in the specific areas of nano-optics known as nanoplasmonics and metamaterials, the editors of the Optical Society's (OSA) open-access journal Optical Materials Express (OMEx) have published a special Focus Issue on Nanoplasmonics and Metamaterials. The issue is organized and edited by Guest Editor Romain Quidant of the Institute of Photonic Sciences and the Catalan Institute for Research in Advanced Studies, Spain, and OMEx Associate Editor Vladimir Drachev of Purdue University, USA.
“Toward Curvilinear Metamaterials Based on Silver-Filled Alumina Templates”
“Research in nanoplasmonics and metamaterials is very well representative of the tremendous increase of activities in nano-optics,” said Drachev. “Both are expected to have a strong impact on our society, especially in the areas of chip-scale and high-integration density optical interconnects, advanced materials for photovoltaics, and bio-medical applications.”
The first main motivation behind such enthusiasm for nano-optics comes from the potential of the field to extend concepts and functionalities of conventional optics down to the nanometer scale; toward ultra-compact photonic devices that are not limited by diffraction. Beyond miniaturization, an additional motivation arises from the rich new physics involved when matter is downsized to dimensions that are much smaller than the light wavelength.
“At this very exiting stage of research in nanoplasmonics and metamaterials, further advances are in part conditioned by the development of new optical materials with improved properties, as well as advances in nanofabrication techniques to increase the quality of constitutive nano-units,” said Quidant. “We have seen a noteworthy advance in materials research the past few years. As such, we put together this special issue now to address these advances and highlight the future of this dynamic field.”
Summary
Nanoplasmonics studies the optical properties of nanoscale systems supporting surface plasmons, and gained a lot of attention after the discovery of surface-enhanced Raman scattering (SERS) in the 1970s. Benefiting from recent advances in nanofabrication techniques, research in nanoplasmonics has recently been very successful in using noble metal (especially silver and gold) nanostructures to control light fields well beyond the limit of diffraction. Such control has already contributed to enhanced light interaction with tiny amounts of matter down to the single-molecular level.
In the field of metamaterials, researchers aim at designing ensembles of sub-wavelength units that behave as effective materials featuring properties that are not found in nature. Artificial materials have recently regained a huge interest triggered by provocative theoretical proposals such as superlensing and invisibility at optical frequencies, as well as the successful experimental demonstration of negative refraction.
Key Findings & Select Papers
  • In the fields of plasmonics and plasmonic metamaterials, reduction in metal losses is important and crucial for potential applications. It will bring the technology from the proof-of-principle research to system-qualified development. In their paper, Purdue University researchers Naik, Kim and Boltasseva explore the use of alternative materials such as conducting oxides and transition-metal nitrides that feature lower intrinsic absorption than conventional plasmonic metals. Paper: “Oxides and nitrides as alternative plasmonic materials in the optical range,” Optical Materials Express, Vol. 1, Issue 6, pp. 1090-1099.
  • Dopant concentration dependence of aluminum-doped zinc oxide (ZnO) performance as a metal alternative is studied by Frölich and Wegener. This group from the Karlsruhe Institute of Technology demonstrates applicability of the atomic layer deposition technique for 3-D design of metamaterials. Paper: “Spectroscopic characterization of highly doped ZnO films grown by atomic-layer deposition for three-dimensional infrared metamaterials,” Optical Materials Express, Vol. 1, Issue 5, pp. 883-889.
  • Kehr et al. develop lenses with sub-diffraction resolution (superlenses) for terahertz spectral range based on phonon resonances of perovskite-type oxides. This collaborative team from the U.K., U.S., and Germany uses a unique near-field microscopy tool with a free-electron tunable laser for their research. Paper: “Microspectroscopy on perovskite-based superlenses.” Optical Materials Express, Vol. 1, Issue 5, pp. 1051-1060.
  • Alternatively, Campione, Albani, and Capolino study another approach in which the metal losses are compensated by the introduction of a gain material. The authors predict the possibility of designing loss-compensated metamaterials, made of a 3-D lattice of nanoshells, that exhibit permittivity near zero with moderate losses at optical frequencies by using optically pumped fluorescent dye molecules in the cores of the metamaterial constituent nanoshells. Paper: “Complex modes and near-zero permittivity in 3D arrays of plasmonic nanoshells: loss compensation using gain,” Optical Materials Express, Vol. 1, Issue 6, pp. 1077-1089.
  • The ability to define nano-units with a very high accuracy and reproduce them with ease and low cost over large areas will become a key ingredient toward the elaboration of future optical devices based on plasmonics and metamaterials. A collaborative team led by Noginov develops a new approach along this direction. In their paper, Barnakov et al. discuss a fabrication method based on silver-filled alumina templates as a way to achieve curved metamaterials. Paper: “Toward Curvilinear Metamaterials Based on Silver-Filled Alumina Templates,” Optical Materials Express, Vol. 1, Issue 6, pp. 1061-1064.
  • Another collaborative team led by Linden reports on a powerful technique for the spatial and spectral mapping of the plasmonic modes of lithographically defined photonic meta-atoms. In this paper, Cube et al. show the importance of advanced characterization tools such as electron energy-loss spectroscopy (EELS) combined with transmission electron microscopy, capable to probe with a sub-wavelength resolution the properties of individual nano-units in metamaterials. Paper: “Spatio-spectral characterization of photonic meta-atoms with electron energy-loss spectroscopy,” Optical Materials Express, Vol. 1, Issue 6, pp. 1009-1018.
About Optical Materials Express
Optical Materials Express (OMEx) is OSA's newest peer-reviewed, open-access journal focusing on the synthesis, processing and characterization of materials for applications in optics and photonics. OMEx, which launched in April 2011, primarily emphasizes advances in novel optical materials, their properties, modeling, synthesis and fabrication techniques; how such materials contribute to novel optical behavior; and how they enable new or improved optical devices. For more information, visitwww.OpticsInfoBase.org/OMEx.
About OSA
Uniting more than 106,000 professionals from 134 countries, the Optical Society (OSA) brings together the global optics community through its programs and initiatives. Since 1916 OSA has worked to advance the common interests of the field, providing educational resources to the scientists, engineers and business leaders who work in the field by promoting the science of light and the advanced technologies made possible by optics and photonics. OSA publications, events, technical groups and programs foster optics knowledge and scientific collaboration among all those with an interest in optics and photonics. For more information, visit www.osa.org.

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