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首页> 外文期刊>Acta Physica Polonica. A >On Optical Characterization of Carrier Lifetimes in GaN Layers by Time-Resolved Four-Wave Mixing and Photoluminescence Techniques
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On Optical Characterization of Carrier Lifetimes in GaN Layers by Time-Resolved Four-Wave Mixing and Photoluminescence Techniques

机译:时间分辨四波混频和光致发光技术研究GaN层中载流子寿命的光学特性

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摘要

We provide numerical analysis of nonequilibrium carrier dynamics in GaN layers at interband photoexcitation by a picosecond light pulse. By solving the continuity equation for bipolar carrier plasma, we analyze spatial and temporal evolution of carrier density. We show that fast carrier diffusion to the bulk determines the carrier in-depth profile in GaN epilayers with a thickness larger than the carrier diffusion length. By integrating the carrier spatial profiles at experimental conditions, corresponding to time-resolved four-wave mixing and time-resolved photoluminescense we simulate the four--wave mixing and time-resolved photoluminescense kinetics in subnanosec-ond time domain. The modeling data using parameters of the studied GaN epilayers (their thickness, diffusion coefficient, carrier lifetime, and absorption coefficients at emission wavelengths) were compared with the experimental results. The analysis provided conditions at which the discrepancy between the measured carrier lifetime by time-resolved photoluminescense and time-resolved four-wave mixing may occur. For hydride-vapor phase epitaxy GaN layers with a large diffusion length, the fast photoluminescense kinetics are confirmed by modeling and experiments that they are due to diffusion governed carrier in-depth redistribution, while four-wave mixing kinetics remain insensitive for carrier in-depth redistribution.
机译:我们通过皮秒光脉冲在带间光激发下提供了GaN层中非平衡载流子动力学的数值分析。通过求解双极性载流子的连续性方程,我们分析了载流子密度的时空演化。我们表明,快速扩散到主体的载流子决定了厚度大于载流子扩散长度的GaN外延层中的载流子深度分布。通过整合实验条件下的载流子空间剖面,对应于时间分辨的四波混合和时间分辨的光致发光,我们模拟了亚纳秒级时域中的四波混合和时间分辨的光致发光动力学。使用所研究的GaN外延层的参数(其厚度,扩散系数,载流子寿命和发射波长处的吸收系数)的建​​模数据与实验结果进行了比较。分析提供了这样的条件,在该条件下,通过时间分辨的光致发光测量的载流子寿命和时间分辨的四波混合可能会出现差异。对于具有较大扩散长度的氢化物-汽相外延GaN层,通过建模和实验证实了快速的光致发光动力学,这是由于扩散控制了载流子的深度重新分布,而四波混合动力学对载流子的深度仍然不敏感重新分配。

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