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Carrier density driven lasing dynamics in ZnO nanowires

机译:ZnO纳米线中载流子密度驱动的激光动力学

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We report on the temporal lasing dynamics of high quality ZnO nanowires using the time-resolved micro-photoluminescence technique. The temperature dependence of the lasing characteristics and of the corresponding decay constants demonstrate the formation of an electron-hole plasma to be the underlying gain mechanism in the considered temperature range from 10 K to 300 K. We found that the temperature-dependent emission onset-time (t(on)) strongly depends on the excitation power and becomes smallest in the lasing regime, with values below 5 ps. Furthermore, the observed red shift of the dominating lasing modes in time is qualitatively discussed in terms of the carrier density induced change of the refractive index dispersion after the excitation laser pulse. This theory is supported by extending an existing model for the calculation of the carrier density dependent complex refractive index for different temperatures. This model coincides with the experimental observations and reliably describes the evolution of the refractive index after the excitation laser pulse.
机译:我们报告使用时间分辨的微光致发光技术的高质量ZnO纳米线的时间激光动力学。激光特性及其相应的衰减常数的温度依赖性表明,在所考虑的10 K至300 K的温度范围内,电子空穴等离子体的形成是潜在的增益机制。时间(t(on))在很大程度上取决于激发功率,并且在发射状态下变得最小,其值低于5 ps。此外,就激发激光脉冲之后载流子密度引起的折射率色散变化,定性地讨论了观察到的主要激光模式在时间上的红移。通过扩展用于计算不同温度下与载流子密度相关的复数折射率的现有模型,可以支持此理论。该模型与实验观察结果一致,并可靠地描述了激发激光脉冲后折射率的变化。

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