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Self-pulsations and excitability in optically injected quantum-dot lasers: Impact of the excited states and spontaneous emission noise

机译:光学注入量子点激光器中的自脉动和激发性:激发态和自发发射噪声的影响

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摘要

We study the dynamics of an optically injected quantum-dot laser accounting for excited states. Mapping of the bifurcations in the plane frequency detuning vs. injection strength shows that the relaxation rate scales the regions of locking and single- and double-period solutions, while the capture rate has a minor effect. Within the regions of time-periodic solutions, close to the saddle-node bifurcation boundary, we identify subregions where the output signal resembles excitable pulses as a result of the bottleneck phenomenon. We show that such emission is determined mainly by fluctuations in the occupation of the excited states. The interpulse time follows an inverse square root scaling law as a function of the detuning. In a deterministic system the pulses are periodic regardless of the detuning, but in the presence of noise, close to the locking region, the interpulse time follows a positively skewed normal distribution. For a fixed frequency detuning, increasing the noise strength can shift the mean of the interpulse time distribution and make the pulsations more periodic.
机译:我们研究了考虑到激发态的光学注入量子点激光器的动力学。分叉在平面频率失谐与注入强度之间的映射表明,弛豫率可缩放锁定,单周期和双周期解的区域,而捕获率的影响较小。在时间周期解的区域内,靠近鞍形节点的分叉边界,我们确定了由于瓶颈现象而导致输出信号类似于可激发脉冲的子区域。我们表明,这种发射主要由激发态占据的波动决定。脉冲时间遵循反平方根定标定律,作为失谐的函数。在确定性系统中,脉冲是周期性的,与失谐无关,但是在存在噪声的情况下,靠近锁定区域,脉冲间的时间遵循正偏正态分布。对于固定频率的失谐,增加噪声强度会改变脉冲间时间分布的平均值,并使脉冲更周期性。

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