Next Article in Journal
Nonperturbative Generation of Harmonics by Nanometer-Scale Localized Electronic States on the Surface of Bulk Materials and Nano-Films
Previous Article in Journal
Laser Beam Jitter Control Based on a LabVIEW FPGA Control System
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Optimized Design and Simulation of Optical Section in Electro-Reflective Modulators Based on Photonic Crystals Integrated with Multi-Quantum-Well Structures

by
Mohammad Mahdi Khakbaz Heshmati
1,*,† and
Farzin Emami
1,2,†
1
Department of Electrical and Electronic Engineering, Shiraz University of Technology, Shiraz 71557-13876, Iran
2
Centre for Smart Power and Energy Research, School of Engineering, Deakin University, Melbourne, VIC 3216, Australia
*
Author to whom correspondence should be addressed.
These authors contributed equally to this work.
Optics 2023, 4(1), 227-245; https://doi.org/10.3390/opt4010016
Submission received: 8 January 2023 / Revised: 17 February 2023 / Accepted: 23 February 2023 / Published: 1 March 2023
(This article belongs to the Special Issue Novel Optical Materials and Device)

Abstract

In the design of photonic integrated circuits (PICs), the optical connections of the PIC surface, along with the electronic components of the chips, are significant issues. One of the optoelectronics components that utilizes these surface connections are electro-reflective modulators, consisting of an optical section and an electronic section. In this paper, a novel scheme of two-dimensional photonic crystals (PhCs) is presented for the optical and reflective sections of this device. This design is two-dimensional; thus, it has less volume than the current bulky structures. The finite element method is utilized to simulate and optimize the scheme of PhCs and gold layer parameters. Furthermore, optimization of design parameters is accomplished through the Nelder–Mead method. Moreover, the modeling and simulation of the proposed hybrid PhCs has been investigated according to the structural parameters with tolerance. These tolerances, related to the nanorods’ radius and lattice constants, are considered to justify and vindicate the fabrication technology limitations and conditions. In the “on” state of the modulator, the light transmission ratio is 98% for a 903 nm wavelength with a 45° angle of deflection and incident light, nd the bandwidth is 20 nm. For an 897 nm wavelength with a 41° angle, the transmission ratio is 95%, and the bandwidth is 7 nm.
Keywords: electro-reflective modulators (ERMs); optical integrated circuits (OICs); optical surface waves; optical modulation; optoelectronics; photonic crystals (PhCs); photonic integrated circuits (PICs); two-dimensional design electro-reflective modulators (ERMs); optical integrated circuits (OICs); optical surface waves; optical modulation; optoelectronics; photonic crystals (PhCs); photonic integrated circuits (PICs); two-dimensional design

Share and Cite

MDPI and ACS Style

Heshmati, M.M.K.; Emami, F. Optimized Design and Simulation of Optical Section in Electro-Reflective Modulators Based on Photonic Crystals Integrated with Multi-Quantum-Well Structures. Optics 2023, 4, 227-245. https://doi.org/10.3390/opt4010016

AMA Style

Heshmati MMK, Emami F. Optimized Design and Simulation of Optical Section in Electro-Reflective Modulators Based on Photonic Crystals Integrated with Multi-Quantum-Well Structures. Optics. 2023; 4(1):227-245. https://doi.org/10.3390/opt4010016

Chicago/Turabian Style

Heshmati, Mohammad Mahdi Khakbaz, and Farzin Emami. 2023. "Optimized Design and Simulation of Optical Section in Electro-Reflective Modulators Based on Photonic Crystals Integrated with Multi-Quantum-Well Structures" Optics 4, no. 1: 227-245. https://doi.org/10.3390/opt4010016

APA Style

Heshmati, M. M. K., & Emami, F. (2023). Optimized Design and Simulation of Optical Section in Electro-Reflective Modulators Based on Photonic Crystals Integrated with Multi-Quantum-Well Structures. Optics, 4(1), 227-245. https://doi.org/10.3390/opt4010016

Article Metrics

Back to TopTop