Showing posts with label Massood Tabib-Azar. Show all posts
Showing posts with label Massood Tabib-Azar. Show all posts

Sunday, February 23, 2020

Abstract-Terahertz Detection of Zika Viruses

https://www.preprints.org/manuscript/202002.0232/v1

Our main objective in this work was to examine the possibility of non-intrusive, label-free, detection of whole Zika viruses using terahertz signals with or without a targeting/binding oligonucleotide (aptamers). We report for the first time the use of terahertz electromagnetic waves (0.75 THz – 1.1 THz) to detect Zika viruses. The Zika/aptamer complexes showed a reproducible terahertz reflection coefficient minimum at 1.064 THz while the Zika virus’s reflection minimum was at 1.073 THz. Of different substrates we examined, the polyester petri dish provided a very low loss and excellent terahertz transmission. To increase the interaction between the terahertz signal and the sample we also used polyester microbeads coated with aptamers. We then measured the terahertz reflection from the microbeads as a function of Zika concentration. The resulting terahertz Zika sensor had sensitivity of 63 Hz/Zika and minimum detectable signal of ~ 16x103 Zika. Other substrates such as Graphene on polyethylene terephthalate (PET), 50 nm-thick gold film on polycarbonate, thin (30 um-thick) glass slide and Teflon were also examined. Graphene substrate enabled direct detection of the Zika without any aptamers.

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.