Showing posts with label nanodevice. Show all posts
Showing posts with label nanodevice. Show all posts

Sunday, March 29, 2020

A nanoscale device to generate high-power Terahertz waves


The nanoscale terahertz wave generator can be implemented on flexible substrates. (Image: EPFL / POWERlab)
https://www.nanowerk.com/nanotechnology-news2/newsid=54832.php
(Nanowerk News) Terahertz (THz) waves fall between microwave and infrared radiation in the electromagnetic spectrum, oscillating at frequencies of between 100 billion and 30 trillion cycles per second. These waves are prized for their distinctive properties: they can penetrate paper, clothing, wood and walls, as well as detect air pollution. THz sources could revolutionize security and medical imaging systems. What's more, their ability to carry vast quantities of data could hold the key to faster wireless communications.
THz waves are a type of non-ionizing radiation, meaning they pose no risk to human health. The technology is already used in some airports to scan passengers and detect dangerous objects and substances.
Despite holding great promise, THz waves are not widely used because they are costly and cumbersome to generate. But new technology developed by researchers at EPFL could change all that. The team at the Power and Wide-band-gap Electronics Research Laboratory (POWERlab), led by Prof. Elison Matioli, built a nanodevice (1 nanometer = 1 millionth of a millimeter) that can generate extremely high-power signals in just a few picoseconds, or one trillionth of a second, - which produces high-power THz waves.
The technology, which can be mounted on a chip or a flexible medium, could one day be installed in smartphones and other hand-held devices. The work first-authored by Mohammad Samizadeh Nikoo, a PhD student at the POWERlab, has been published in the journal Nature ("Nanoplasma-enabled picosecond switches for ultrafast electronics").

How it works

The compact, inexpensive, fully electric nanodevice generates high-intensity waves from a tiny source in next to no time. It works by producing a powerful "spark," with the voltage spiking from 10 V (or lower) to 100 V in the range of a picosecond. The device is capable of generating this spark almost continuously, meaning it can emit up to 50 million signals every second. When hooked up to antennas, the system can produce and radiate high-power THz waves.
The device consists of two metal plates situated very close together, down to 20 nanometers apart. When a voltage is applied, electrons surge towards one of the plates, where they form a nanoplasma. Once the voltage reaches a certain threshold, the electrons are emitted almost instantly to the second plate. This rapid movement enabled by such fast switches creates a high-intensity pulse that produces high-frequency waves.
Conventional electronic devices are only capable of switching at speeds of up to one volt per picosecond - too slow to produce high-power THz waves.
The new nanodevice, which can be more than ten times faster, can generate both high-energy and high-frequency pulses. "Normally, it's impossible to achieve high values for both variables," says Matioli. "High-frequency semiconductor devices are nanoscale in size. They can only cope with a few volts before breaking out. High-power devices, meanwhile, are too big and slow to generate terahertz waves. Our solution was to revisit the old field of plasma with state-of-the-art nanoscale fabrication techniques to propose a new device to get around those constraints."
According to Matioli, the new device pushes all the variables to the extreme: "High-frequency, high-power and nanoscale aren't terms you'd normally hear in the same sentence."
"These nanodevices, on one side, bring an extremely high level of simplicity and low-cost, and on the other side, show an excellent performance. In addition, they can be integrated with other electronic devices such as transistor. Considering these unique properties, nanoplasma can shape a different future for the area of ultra-fast electronics", says Samizadeh.
The technology could have wide-ranging applications beyond generating THz waves. "We're pretty sure there'll be more innovative applications to come," adds Matioli.
Source: Ecole Polytechnique Fédérale de Lausanne

Friday, November 10, 2017

Abstract-Tunable wavelength demultiplexer using modified graphene plasmonic split ring resonators for terahertz communication


Neetu Joshi, Nagendra P .Pathak,

http://www.sciencedirect.com/science/article/pii/S1569441017302420

This paper presents graphene modified ring resonator based wavelength demultiplexer (WDM) for THz device applications that is, a surface plasmon polaritons (SPPs) demultiplexer consisting of two nanostrip waveguides at input as well as output coupled to each other by a split ring resonator (SRR), which is modified in shape as compared to a simple ring-shaped resonator. A systematic analysis of the transmission spectra for the graphene based SRR poses clear insight on the demultiplexing phenomenon of the proposed nanodevice. The results show resonance peaks in the transmission spectrum, having a linear relationship with the chemical potential of graphene. The influence of structural parameters have also been analyzed. The tuning capability of graphene based tunable WDM, lays its foundation in the applications of optical switches, modulators, etc.

Friday, February 27, 2015

Abstract-Ultracompact interference phonon nanocapacitor for storage and lasing of terahertz lattice waves




Haoxue Han, Baowen Li, Sebastian Volz, and Yuriy A. Kosevich

http://journals.aps.org/prl/accepted/63070Y5cJ2e19245450a0b6763a77220fc18961ff

We introduce a novel ultracompact nanocapacitor of coherent phonons formed by high-finesse interference mirrors based on atomic-scale semiconductor metamaterials. Our molecular dynamics simulations show that the nanocapacitor stores monochromatic terahertz lattice waves, which can be used for phonon lasing - the emission of coherent phonons. Either one- or two-color phonon emission can be realized depending on the geometry of the nanodevice. The two-color regime of the interference phonon nanocapacitor originates from different incidence-angle dependence of the transmission of longitudinal and transverse phonons at the respective antiresonances. Coherent phonon storage can be achieved by cooling the nanocapacitor initially thermalized at room temperature or by the pump-probe technique. The linewidth narrowing and the computed relative phonon participation number confirm strong phonon confinement in the interference nanocavity by an extremely small amount of resonance defects. The emission of coherent terahertz acoustic beams from the nanocapacitor can be realized by applying tunable reversible stress which shifts the antiresonance frequencies.

Monday, December 15, 2014

Abstract-GRAPHENE-BASED NANODEVICES FOR TERAHERTZ ELECTRONICS


PATENTSCOPE

http://2dresearch.com/2014/12/15/graphene-based-nanodevices-for-terahertz-electronics/

Application Number:
14363200Application Date:09.11.2012
Publication Number:20140319385Publication Date:30.10.2014
Publication Kind :A1
PCT Reference: Application Number:PCT/EP2012/072247 ; Publication Number: Click to see the data
IPC:
H01L 33/00
G21G 4/06
H01L 29/16
Applicants:UNIVERSITÄT AUGSBURG
Inventors:Mikhailov Sergey
Priority Data:11192457.7 07.12.2011 EP
Title:(EN) GRAPHENE-BASED NANODEVICES FOR TERAHERTZ ELECTRONICS

The invention refers to a nanodevice for generating electromagnetic radiation in the terahertz frequency range, the nanodevice comprising a substrate (3) made of a dielectric material, a first graphene layer (1) arranged on the substrate (3), having a first longitudinal end being electrically connected with a source contact (source 1) and having a second longitudinal end being connected with a drain contact (drain 1), an electrically conducting layer (2) having a periodic grating structure with grating stripes (6) extending substantially in transversal direction (y), and a dielectric layer (4) arranged between the first graphene layer (1) and the conducting layer (2).