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首页> 外文期刊>Selected Topics in Quantum Electronics, IEEE Journal of >High-Speed Small-Signal Cross-Gain Modulation in Quantum-Dot Semiconductor Optical Amplifiers at 1.3 $mu$m
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High-Speed Small-Signal Cross-Gain Modulation in Quantum-Dot Semiconductor Optical Amplifiers at 1.3 $mu$m

机译:量子点半导体光放大器中的高速小信号交叉增益调制,功耗为1.3μm·m

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Wavelength conversion using cross-gain modulation (XGM) in quantum-dot (QD) semiconductor optical amplifiers (SOAs) is investigated. Small-signal measurements reveal that the XGM bandwidth as well as the conversion efficiency strongly depends on the bias current. Thus, it is possible to tune the XGM by increasing the current from a low efficiency with a 10-GHz bandwidth to a very efficient one with bandwidths well exceeding 40 GHz. Two different saturation mechanisms are responsible for this pronounced influence of the bias current: 1) total carrier depletion that leads to a slow broadband cross-gain saturation and 2) spectral hole burning that causes spectrally narrow-band high-speed XGM. With increasing current, the saturation by depleting the carrier reservoir, which feeds the QDs, is minimized, and therefore, spectral hole burning becomes more dominant. Large-signal wavelength conversion experiments using 50 ps pulses indicate that efficient high-speed XGM is feasible for pump and probe signal detuning up to 10 nm. With increasing detuning, larger pulse broadening and a decreasing efficiency are observed, consistent with the small-signal results. The results on the QD SOAs are compared to conventional quantum-well devices.
机译:研究了在量子点(QD)半导体光放大器(SOA)中使用交叉增益调制(XGM)的波长转换。小信号测量表明,XGM带宽以及转换效率在很大程度上取决于偏置电流。因此,可以通过将电流从10 GHz带宽的低效率增加到带宽超过40 GHz的非常高效的电流来调谐XGM。偏置电流的这种显着影响是由两种不同的饱和机制造成的:1)导致耗尽的宽带交叉增益饱和的总载流子耗尽,以及2)引起频谱窄带高速XGM的频谱空穴燃烧。随着电流的增加,通过耗尽向QD馈入的载流子库的饱和度被最小化,因此,光谱空穴燃烧变得更加重要。使用50 ps脉冲的大信号波长转换实验表明,有效的高速XGM对于泵浦和探测信号失谐至10 nm可行。随着失谐的增加,观察到较大的脉冲展宽和效率下降,这与小信号结果一致。将QD SOA上的结果与常规量子阱器件进行了比较。

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