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Ultrafast Electronic Dynamics in Unipolar n-Doped InGaAs–GaAs Self-Assembled Quantum Dots

机译:单极n掺杂InGaAs–GaAs自组装量子点中的超快电子动力学

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The dynamics of electron capture and relaxation in an n-doped quantum-dot (QD) infrared detector structure are studied directly in the time domain using ultrafast intraband-pump-interband-probe differential transmission spectroscopy. Femtosecond midinfrared pulses are used to excite electrons from the doped QDs into the conduction band continuum, and the complete electron distribution functions are monitored as a function of time using an interband probe. Because only electrons are excited and no holes are present, the electron-hole scattering which dominates the relaxation in bipolar systems is not present, and the measurement yields the electron dynamics exclusively. Excitation-dependent electron capture times were measured from 40 to <10 ps with increasing pump intensity. Intradot inter-level relaxation times were observed to be ~100 ps, driven by Auger-type electron-electron scattering. Nanosecond-scale dynamics in the n=1 state were also observed and attributed to transport effects. Our results indicate that the phonon bottleneck in the QDs is circumvented by Auger scattering; nevertheless, the electron dynamics in the unipolar device are found to be slower than those observed in bipolar systems, which confirms the significance of the holes in the carrier relaxation in bipolar devices. The results also support the improved operation of QD infrared photodetectors relative to quantum-well-based devices
机译:使用超快速带内-泵-带间-探针差分传输光谱法直接在时域中研究了n掺杂量子点(QD)红外探测器结构中电子捕获和弛豫的动力学。飞秒中红外脉冲用于将电子从掺杂的量子点激发到导带连续体中,并使用带间探针监测完整的电子分布函数随时间的变化。因为仅电子被激发且不存在空穴,所以不存在主导双极系统弛豫的电子-空穴散射,并且该测量仅产生了电子动力学。随着泵浦强度的增加,与激发有关的电子捕获时间从40 ps降至<10 ps。在俄歇型电子-电子散射的驱动下,点内层间弛豫时间约为100 ps。还观察到了n = 1状态的纳秒级动力学,并归因于传输效应。我们的结果表明,量子扩散中的声子瓶颈被俄歇散射所规避。然而,发现单极器件中的电子动力学比双极系统中观察到的慢,这证实了空穴在双极器件中载流子弛豫中的重要性。该结果还支持QD红外光电探测器相对于基于量子阱的设备的改进操作

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