Showing posts with label microplasma. Show all posts
Showing posts with label microplasma. Show all posts

Thursday, August 10, 2017

Abstract-Microplasma Traveling Wave Terahertz Amplifier



Massood Tabib-Azar,  Olutosin Charles Fawole,  Shashank S. Pandey,  Carlos H. Mastrangelo,

http://ieeexplore.ieee.org/document/8004516/

We describe a traveling wave terahertz (0.75-1.1 THz) amplifier that uses a meandering TE₀₁ waveguide coupled to a plasma beam and discuss its design, microfabrication, and cold/hot tests. Motivations for using plasmas instead of electron beams are: 1) thermionic emission required in e-beam generation can be replaced with gas ionization, 2) electrostatic lenses and magnetic focusing structures can be eliminated or reduced in complexity since plasmas can be self-focusing, 3) larger acceleration fields can be used by taking advantage of plasmas' space-charge electric fields of ~10⁴-10⁶ V/cm, 4) the plasma pressure can be lowered to yield an electron beam in the limit when the devices' critical dimensions are smaller than the electron mean-free path, and, hence, 5) higher power amplifications at higher efficiency can be achieved. Cold tests showed that a dielectric coating (50-nm Al₂O₃) of the gold-coated meandering silicon waveguide improved the maximum terahertz transmission (S₂₁) from -20 to -15 dB. Hot tests showed 12-dB gain at a center frequency of ~0.9 THz over a 1-GHz bandwidth.

Friday, April 24, 2015

Generating broadband terahertz radiation from a microplasma in the air




A microplasma is created by focusing intense laser pulses in ambient air with a microscope objective in the lab of University of Rochester Institute of Optics Ph.D. student Fabrizio Buccheri and his advisor, Professor Xi-Cheng Zhang. Besides visible light, the microplasma emits electromagnetic pulses at terahertz frequencies that can be used to detect complex molecules, such as explosives and drugs. Credit: J. Adam Fenster / University of Rochester
http://phys.org/news/2015-04-real-time-tunable-plasmon-laser.html
Researchers at the University of Rochester's Institute of Optics have shown that a laser-generated microplasma in air can be used as a source of broadband terahertz radiation.
In a paper published this week in Optica, Fabrizio Buccheri and Xi-Cheng Zhang demonstrate that an approach for generating  waves using intense laser pulses in air - first pioneered in 1993 - can be done with much lower power lasers, a major challenge until now. Ph.D. student and lead author Buccheri explains that they exploited the underlying physics to reduce the necessary laser power for plasma generation. He adds that it could potentially be improved for applications in the monitoring of explosives or drugs.


Buccheri explains that applications for , a form of electromagnetic radiation named after its frequency, can be divided into two categories: imaging and spectroscopy. Imaging using  is similar to imaging using X-rays, but unlike X-rays it is not a form of ionizing radiation. Imaging with terahertz can, for example, allow us to look under layers of painting. For imaging applications, a narrow range of  is needed. He adds that this can be generated using specific terahertz devices, such as diodes or lasers. However, for spectroscopy applications, "such as analyzing food for poisons or baggage for drugs or explosives it is useful for the terahertz radiation to be as 'broadband' as possible," according to Buccheri. That is, it contains waves of many different frequencies within the terahertz range. For this, a plasma is needed.

Buccheri explains that spectroscopy works by looking at which frequencies are absorbed by certain materials. Different materials have different spectra - they have peaks and troughs at different frequencies. But depending on the spectral resolution, these features might look very similar for the different materials.
"Spectroscopy is like taking a picture," said Buccheri. "If the camera has a low resolution, the resulting image might be blurry and the object difficult to identify."

For common applications, however, higher spectral resolution is not feasible as it is more costly and requires more sophisticated equipment. In these cases, more points of comparison are needed, just like in fingerprint analysis. The more points of comparison that are available, the more precise the analysis, and this is what a broadband source can provide, says Buccheri.
"If you were only using a source of radiation with a range around 1 terahertz you might not be able to tell two different materials apart at low , as you might only have one feature in the spectrum to compare," added Buccheri. "If instead you compare their spectra over a range of tens of terahertz, the 'fingerprints' of the two materials will differ and the materials will be more clearly identifiable, even at lower spectral resolutions."
Until now, approaches to use a plasma as a broadband source of terahertz have commonly used an elongated plasma generated by combining together two laser beams of different frequencies, i.e., colors. This technique, usually referred to as "two-color" approach, requires powerful, expensive lasers. The "one-color" approach uses single laser frequency to generate the plasma. Pioneered by Harald Hamster and colleagues in 1993, it required even higher laser energies and therefore it was not explored further until this recent paper by Buccheri and Zhang.

Buccheri explains that he has always been interested in the polarization of light and how it can be exploited for different uses. He was interested in certain polarization states that exist for a beam of light: azimuthal or radial polarization. In these states, the electric field is either perpendicular to the radial axis or radial at each given point.

"I wanted to see if by creating a plasma with a laser in one of these "weirder" polarization states I could make the terahertz emission more efficient," said Buccheri. "That didn't work. But when I understood why it didn't work, I really understood the underlying physics."

He adds that he was then able to exploit the physics to use lower laser energies than previously thought possible to generate broadband terahertz waves in air. The trick was to replace elongated plasmas, with lengths ranging from few millimeters to several centimeters, with a microplasma, about the width of a human hair. He thinks that fine tuning the type of laser used and changing the air to a different gas could enable even lower operation powers.

An advantage of this "one-color" approach to generating terahertz radiation is the fact that the terahertz waves propagate in a different direction to the  beam. This makes it easier for potentially coupling the terahertz waves to a wave guide on a microchip, for example.

Wednesday, September 25, 2013

Abstract-The terahertz characteristics of a sandwich type microplasma structure



Ruilin Gao1Chengxun Yuan1Ying Wang1Zhongxiang Zhou1Dewei Gong1Yuan Fang1, and Xianwei Rong2
1Department of Physics, Harbin Institute of Technology, Harbin, Heilongjiang 150001, China
2School of Physics and Electronic Engineering, Harbin Normal University, Harbin, Heilongjiang 150025, China 
http://jap.aip.org/resource/1/japiau/v114/i12/p123302_s1?isAuthorized=no



Recently, major technical advances in developing intense terahertz (THz) sources have provided us with new opportunities to investigate characteristics of a high density microplasma with THz waves. In this paper, a simple sandwich type microplasma model is established. The finite-difference time-domain method using Z-transforms is utilized to simulate the characteristics of reflection, transmission, and absorption of THz waves in this microplasma structure. The effects of both the microplasma width and the permittivity of the outer medium on the propagation are analyzed, and the results show that the THz waves can be greatly influenced and modulated by the structure of the plasma slab and the outer medium. It is demonstrated that such plasma metamaterials exhibit some extraordinary properties in THz frequency range.
© 2013 AIP Publishing LLC

Article Outline

  1. INTRODUCTION
  2. FDTD ALGORITHM
    1. Z-transforms FDTD method
    2. Validity and precision of Z-transforms FDTD
  3. SIMULATION RESULTS AND DISCUSSION
    1. Establishment of the model and choice of the parameters
    2. The effects of plasma layer thickness on the propagation of THz waves
    3. The modulation effects of dielectric plates on the propagation of THz waves
  4. CONCLUSION