Showing posts with label S. Safavi-Naeini. Show all posts
Showing posts with label S. Safavi-Naeini. Show all posts

Sunday, April 1, 2018

Abstract-Broadband Single-Mode THz Suspended Silicon-On-Glass Waveguide



 N. Ranjkesh, S. Gigoyan, H. Amarloo, M. Basha, S. Safavi-Naeini,

http://ieeexplore.ieee.org/document/8289333/media

This letter presents a suspended silicon-on-glass waveguide for broadband single-mode low-loss operation at terahertz frequencies. Measured attenuation constants of the two fabricated waveguides are 0.028 and 0.021 dB/ λ0 (on average) over the operation bandwidths of 420–500 GHz and 500–595 GHz, respectively. The fabrication technique of the waveguide is presented.

Tuesday, January 26, 2016

Abstract-Quantum-Enhanced Second-Order Nonlinearity in Graphene: The Role of Wave Momentum and DC Biasing



Raeis-Zadeh, S.M. ;  Strickland, D. ; Safavi-Naeini, S.

 Department of Electrical and Computer EngineeringCenter of Intelligent Antenna and Radio Systems (CIARS), University of Waterloo, Waterloo, ON, Canada

http://ieeexplore.ieee.org/xpl/articleDetails.jsp?reload=true&arnumber=7360105

A comprehensive and rigorous analysis is presented for the study of terahertz photomixing process in a biased graphene layer, when two obliquely incident waves are used as primary excitation. The second-order nonlinearity tensor of graphene associated with the difference frequency generation (DFG) is calculated to evaluate the amount of induced terahertz current density. In this analysis, we are calculating the significant contribution of the photon drag effect to the DFG and consequently to the terahertz wave generation. We also examine the effect of DC current biasing on the DFG as the Fermi energy level of graphene changes. Our results show that the DFG in graphene can be enhanced by at least two orders of magnitude when the Fermi energy level of graphene becomes equal to the energy of incident photon. This paper provides more insight into the contributing factors in the DFG process and allows the realization of more optimal graphene-based photomixing devices.