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Modeling the Dynamic Response of an Optically-Injected Nanostructure Diode Laser

机译:模拟光学注入纳米结构二极管激光器的动态响应

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摘要

We reformulate a dimensionless approach to evaluate the operational dynamics of an optically injected nanostructure laser as a function of the injection strength and the detuning frequency to account for the large nonlinear gain component associated with nanostructure lasers through the nonlinear carrier relaxation rate and gain compression coefficient. The large nonlinear carrier relaxation rate and gain compression coefficient are shown to impact the level of stability numerically predicted in the optically injected laser at low injected power levels. The numerical model is verified experimentally by optically injecting a quantum-dash Fabry-Perot laser with an operating wavelength of approximately 1550 nm. The quantum-dash laser's large damping rate, gain compression coefficient, and sufficiently small linewidth enhancement factor are observed to inhibit period-doubling and chaotic operation under zero frequency-detuning conditions. The inclusion of the nonlinear carrier relaxation rate in the simulation is shown to greatly enhance the agreement between the numerical predictions and the experimentally observed dynamics.
机译:我们重新设计了一种无量纲方法,以评估光学注入的纳米结构激光器作为注入强度和失谐频率的函数,从而通过非线性载流子弛豫率和增益压缩系数来解决与纳米结构激光器相关的较大非线性增益分量。大的非线性载流子弛豫率和增益压缩系数显示出会影响在低注入功率水平下光学注入激光器中数值预测的稳定性水平。通过光学注入工作波长约为1550 nm的量子破折号Fabry-Perot激光器,通过实验验证了该数值模型。观察到量子点激光器的大阻尼率,增益压缩系数和足够小的线宽增强因子,可以抑制零频率失谐条件下的周期加倍和混沌操作。在仿真中包括非线性载流子弛豫率,可以大大增强数值预测与实验观察到的动力学之间的一致性。

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