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Characterization of the dynamics of optically-injected nanostructure lasers.

机译:光学注入纳米结构激光器的动力学特性。

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摘要

The direct-modulation of semiconductor lasers is the simplest and most compact approach to pass data onto an optical fiber; however, their intrinsic limitations under direct-modulation such as wavelength chirp and inherent relaxation oscillation frequency constraints impede their high-speed and long-distance capabilities. The injection-locking of semiconductor lasers improves the injected laser's operational characteristics under direct-modulation, attracting a large degree of interest over the past decade. These improvements include increasing the modulation bandwidth through the enhancement of the resonance frequency, suppressing nonlinear distortion, and reducing relative intensity noise, mode-hopping, and chirp. The nonlinear dynamics associated with optically-injected semiconductor lasers has also attracted great interest due to potential applications including: all-optical amplitude-modulation to frequency-modulation conversion, chaotic-communication, and photonic microwave generation.;In this dissertation, the optical-injection of quantum-dash and quantum-dot Fabry-Perot semiconductor lasers is investigated in the context of modeling the impact of their characteristically large nonlinear gain component. The impact of the large degree of gain compression on the differential and nonlinear carrier relaxation rates observed in nanostructure lasers under large operational photon densities is also investigated under strong optical-injection conditions.;A novel small-signal microwave modulation response function is derived and shown to improve upon current models at modeling the microwave modulation response under optical-injection. The nonlinear dynamics observed under weak injection strengths are theoretically analyzed using a novel dimensionless rate equation model where including the impact of the nonlinear carrier relaxation rate is shown to improve the agreement with experimentally collected data.;The novel tools derived to analyze the operation of the optically-injected system encompass the physical nature of the injected laser in a more complete manner than previously derived approaches. Theoretical predictions derived here show that large nonlinear carrier relaxation rates, along with suitably small linewidth enhancement parameter values of nanostructure lasers suppress the instability of the optically-injected system. The quantum-dash laser's potential for implementation as a tunable photonic oscillator for use in radio-over-fiber applications or directly-modulated slave laser in a coherent optical communication system is described, along with the quantum-dot laser's highly stable operation under optical-injection.
机译:半导体激光器的直接调制是将数据传递到光纤上的最简单,最紧凑的方法。但是,它们在直接调制下的固有局限性(例如波长线性调频和固有的弛豫振荡频率约束)阻碍了它们的高速和长距离能力。在过去的十年中,半导体激光器的注入锁定改善了注入激光器在直接调制下的工作特性,引起了人们的极大兴趣。这些改进包括通过增强谐振频率来增加调制带宽,抑制非线性失真并减少相对强度噪声,模式跳跃和线性调频。由于潜在的应用领域,与光学注入半导体激光器相关的非线性动力学也引起了极大的兴趣,这些潜在应用包括:全光振幅调制到频率调制转换,混沌通信和光子微波的产生。在模拟其特征大的非线性增益分量的影响的背景下,研究了量子点和量子点法布里-珀罗半导体激光器的注入。还研究了在强光注入条件下,大增益压缩对纳米结构激光器在大工作光子密度下观察到的微分和非线性载流子弛豫速率的影响。推导并展示了一种新颖的小信号微波调制响应函数以改进当前模型,以模拟光学注入下的微波调制响应。使用新颖的无量纲速率方程模型对理论上的弱注入强度下观察到的非线性动力学进行了分析,其中包括非线性载流子弛豫速率的影响可以改善与实验收集的数据的一致性。与以前得出的方法相比,光学注入系统以更完整的方式涵盖了注入激光的物理性质。此处得出的理论预测表明,大的非线性载流子弛豫率,以及适当小的纳米结构激光器的线宽增强参数值,可以抑制光学注入系统的不稳定性。描述了量子点激光器作为可调谐光子振荡器的潜力,该振荡器可用于光纤无线电应用或相干光通信系统中的直接调制从属激光器,以及量子点激光器在光学系统下的高度稳定运行。注射。

著录项

  • 作者

    Pochet, Michael C.;

  • 作者单位

    The University of New Mexico.;

  • 授予单位 The University of New Mexico.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 202 p.
  • 总页数 202
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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