A repository & source of cutting edge news about emerging terahertz technology, it's commercialization & innovations in THz devices, quality & process control, medical diagnostics, security, astronomy, communications, applications in graphene, metamaterials, CMOS, compressive sensing, 3d printing, and the Internet of Nanothings. NOTHING POSTED IS INVESTMENT ADVICE! REPOSTED COPYRIGHT IS FOR EDUCATIONAL USE.
Showing posts with label Mayank Kaushik. Show all posts
Showing posts with label Mayank Kaushik. Show all posts
Thursday, February 20, 2020
Abstract-Terahertz Hollow Core Antiresonant Fiber with Metamaterial Cladding
Jakeya Sultana, Md. Saiful Islam, Cristiano M. B. Cordeiro, Alex Dinovitser, Mayank Kaushik, Brian W.-H. Ng, Derek Abbott,
file:///C:/Users/Randy/Downloads/fibers-08-00014.pdf
A hollow core antiresonant photonic crystal fiber (HC-ARPCF) with metal inclusions is numerically analyzed for transmission of terahertz (THz) waves. The propagation of fundamental and higher order modes are investigated and the results are compared with conventional dielectric antiresonant (AR) fiber designs. Simulation results show that broadband terahertz radiation can be guided with six times lower loss in such hollow core fibers with metallic inclusions, compared to tube lattice fiber, covering a single mode bandwidth (BW) of 700 GHz.
Sunday, June 17, 2012
Abstract-Terahertz scattering by dense media
Mayank Kaushik1, Brian W.-H. Ng1, Bernd M. Fischer1,2, and Derek Abbott1
1Centre for Biomedical Engineering (CBME) and School of Electrical and Electronic Engineering, The University of Adelaide, SA 5005, Australia
2Institut Franco-Allemand de Recherches de Saint Louis, 68301 Saint Louis Cedex, France
2Institut Franco-Allemand de Recherches de Saint Louis, 68301 Saint Louis Cedex, France
Frequency dependent absorption of a given material at distinct frequencies in the terahertz (THz) range is commonly used as a spectral fingerprint for material identification and classification. However, in the presence of strong scattering, these features can often become distorted or altered. Thus, there is an important need to understand how scattering from a sample alters the THz signal. In this letter, we propose an iterative algorithm that builds on the effective field theory proposed by P. C. Waterman and R. Truell [J. Math. Phys. 2, 512–537 (1961)] and offers a rather simple and computationally efficient method for accurately explaining the multiple scattering response of a medium.
© 2012 American Institute of Physics
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