非均匀展宽双波长可选全光宽带量子点半导体光放大器的理论分析与设计

IF 3.3 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Mahdiyeh Eyvazi, Reza Yadipour, Ali Rostami, Parisa Rostami, Hamid Mirtagioglu
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引用次数: 0

摘要

本研究深入探讨了量子点半导体光放大器(qd - soa)在满足日益增长的带宽需求方面所发挥的重要作用。qd - soa提供了独特的成本效益、集成能力、宽带宽、快速响应、强大的功率输出、稳定性和频谱适应性,推动了光通信系统的显著进步。在这项工作中,我们介绍了一种基于量子点半导体光放大器(qd - soa)的新型双波长放大器结构,该结构利用不同尺寸的量子点在特定的中红外波长上实现高效放大。这种创新的方法结合了不同尺寸的量子点,通过优化每个特定波长的放大过程来增强性能。此外,这项工作证明了定制光泵浦机制的使用,增强了载流子恢复过程,减少了载流子在有源区域的弛豫时间。这种新颖的光泵浦技术显著提高了放大器的效率和速度,使本研究有别于其他领域的研究。模拟结果提供了载波相互作用和增益谱之间复杂相互作用的详细见解,提供了对QD-SOA操作动态的全面理解。所提出的量子点半导体光放大器(QD-SOA)在光通信方面取得了重大进展,QD1和QD2的最大放大率分别为26.9倍和19.9倍,带宽分别为12太赫兹和15太赫兹。该研究强调了量子点尺寸、均匀和非均匀展宽以及光泵浦在提高增益和性能方面的作用,展示了qd - soa在光子系统中高增益、宽带应用的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Theoretical analysis and design of a dual-wavelength and selectable all-optical broadband QDs semiconductor optical amplifier (QDs-SOA) with inhomogeneous broadening

Theoretical analysis and design of a dual-wavelength and selectable all-optical broadband QDs semiconductor optical amplifier (QDs-SOA) with inhomogeneous broadening

This study delves into the significant role played by Quantum Dot Semiconductor Optical Amplifiers (QD-SOAs) in meeting the ever-growing bandwidth demands. QD-SOAs offer a unique blend of cost-effectiveness, integration capabilities, wide bandwidth, rapid responsiveness, robust power output, stability, and spectral adaptability, driving notable advancements in optical communication systems. In this work, we introduce a novel two-wavelength amplifier structure based on Quantum Dot Semiconductor Optical Amplifiers (QD-SOAs) that utilizes quantum dots of different sizes to achieve efficient amplification at specific mid-infrared wavelengths. This innovative approach, which incorporates quantum dots with varying sizes, enables enhanced performance by optimizing the amplification process for each specific wavelength. Furthermore, this work demonstrates the use of tailored optical pumping mechanisms that enhance the carrier recovery process and reduce carrier relaxation times in the active region. This novel optical pumping technique leads to a significant increase in the efficiency and speed of the amplifier, distinguishing this study from others in the field. Simulation results provide detailed insights into the complex interplay between carrier interactions and gain spectra, offering a comprehensive understanding of QD-SOA operational dynamics. The proposed Quantum Dot Semiconductor Optical Amplifier (QD-SOA) achieves significant advancements in optical communication, offering maximum amplification rates of 26.9 and 19.9 times for QD1 and QD2, respectively, and bandwidths of 12 THz and 15 THz. The study highlights the role of quantum dot size, homogeneous and inhomogeneous broadening, and optical pumping in enhancing gain and performance, demonstrating the potential of QD-SOAs for high-gain, wide-bandwidth applications in photonic systems.

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来源期刊
Optical and Quantum Electronics
Optical and Quantum Electronics 工程技术-工程:电子与电气
CiteScore
4.60
自引率
20.00%
发文量
810
审稿时长
3.8 months
期刊介绍: Optical and Quantum Electronics provides an international forum for the publication of original research papers, tutorial reviews and letters in such fields as optical physics, optical engineering and optoelectronics. Special issues are published on topics of current interest. Optical and Quantum Electronics is published monthly. It is concerned with the technology and physics of optical systems, components and devices, i.e., with topics such as: optical fibres; semiconductor lasers and LEDs; light detection and imaging devices; nanophotonics; photonic integration and optoelectronic integrated circuits; silicon photonics; displays; optical communications from devices to systems; materials for photonics (e.g. semiconductors, glasses, graphene); the physics and simulation of optical devices and systems; nanotechnologies in photonics (including engineered nano-structures such as photonic crystals, sub-wavelength photonic structures, metamaterials, and plasmonics); advanced quantum and optoelectronic applications (e.g. quantum computing, memory and communications, quantum sensing and quantum dots); photonic sensors and bio-sensors; Terahertz phenomena; non-linear optics and ultrafast phenomena; green photonics.
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