Title :
Subwavelength Graphene-Based Plasmonic THz Switches and Logic Gates
Author :
Yarahmadi, Morteza ; Moravvej-Farshi, Mohammad K. ; Yousefi, Leila
Author_Institution :
Adv. Devices Simulation Lab., Tarbiat Modares Univ., Tehran, Iran
Abstract :
In this paper, we report on the design procedure for developing subwavelength graphene-based plasmonic waveguide, performing as a THz switch or an AND/OR logic gate. The propagation length of the surface plasmons (SPs), stimulated by a 6 THz TM polarized incident wave along this waveguide with a top graphene layer whose chemical potential is held at μC=300 meV (ON state) is more than 35 times larger than that in the waveguide with μC = 0 eV (OFF state). Numerical results, obtained from full wave simulations using a finite element method, also show that the modulation depth density obtained for the straight plasmonic switching waveguide, whose length is just about 20% of the incident wavelength, is larger than those reported to date. Moreover, we also designed a logic AND gate composed of a straight waveguide, a Y-branch switch, and a logic OR gate composed of two face to face Y-branches, whose total lengths are ~ 37%, ~ 45%, and ~ 53% of the incident wavelength, respectively. Simulations show that the maximum ON/OFF ratios for these subwavelength plasmonic waveguides that occur between their `1 1´ and `0 0´ logical states are ~ 41.37, ~ 39.87, and ~ 40.76 dB, respectively. These numerical data also show that the modulation depth densities obtained for these devices are also greater than those reported to date. The proposed graphene-based plasmonic switches and gates offer potential building blocks for the future digital plasmonic circuits operating around 6 THz.
Keywords :
finite element analysis; graphene devices; logic gates; semiconductor switches; surface plasmons; AND-OR logic gate; C; TM polarized incident wave; Y-branch switch; electron volt energy 300 meV; finite element method; frequency 6 THz; graphene layer; modulation depth density; plasmonic THz switches; plasmonic waveguide; straight plasmonic switching waveguide; subwavelength graphene; surface plasmons; Chemicals; Electromagnetic waveguides; Graphene; Logic gates; Modulation; Optical switches; Plasmons; Graphene; plasmonic logic gate; plasmonic switch;
Journal_Title :
Terahertz Science and Technology, IEEE Transactions on
DOI :
10.1109/TTHZ.2015.2459674