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A study of photomodulated reflectance on staircase-like n-doped GaAs/AlxGa1−xAs quantum well structures

机译:阶梯状n掺杂GaAs / AlxGa1-xAs量子阱结构上光调制反射率的研究

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摘要

In this study, photomodulated reflectance (PR) technique was employed on two different quantum well infrared photodetector (QWIP) structures, which consist of n-doped GaAs quantum wells (QWs) between undoped AlxGa1−xAs barriers with three different x compositions. Therefore, the barrier profile is in the form of a staircase-like barrier. The main difference between the two structures is the doping profile and the doping concentration of the QWs. PR spectra were taken at room temperature using a He-Ne laser as a modulation source and a broadband tungsten halogen lamp as a probe light. The PR spectra were analyzed using Aspnes’ third derivative functional form.Since the barriers are staircase-like, the structure has different ground state energies; therefore, several optical transitions take place in the spectrum which cannot be resolved in a conventional photoluminescence technique at room temperature. To analyze the experimental results, all energy levels in the conduction and in the valance band were calculated using transfer matrix technique, taking into account the effective mass and the parabolic band approximations. A comparison of the PR results with the calculated optical transition energies showed an excellent agreement. Several optical transition energies of the QWIP structures were resolved from PR measurements. It is concluded that PR spectroscopy is a very useful experimental tool to characterize complicated structures with a high accuracy at room temperature.
机译:在这项研究中,对两种不同的量子阱红外光电探测器(QWIP)结构采用了光调制反射率(PR)技术,该结构由具有三种不同x成分的未掺杂AlxGa1-xAs势垒之间的n掺杂GaAs量子阱(QWs)组成。因此,屏障轮廓为阶梯状屏障的形式。两种结构之间的主要区别是QW的掺杂分布和掺杂浓度。 PR光谱是在室温下使用He-Ne激光作为调制源和宽带钨卤素灯作为探照灯拍摄的。 PR谱使用Aspnes的三阶导数函数形式进行分析。由于势垒是阶梯状的,因此该结构具有不同的基态能。因此,在光谱中发生了几个光学跃迁,而在室温下常规的光致发光技术无法解决这些跃迁。为了分析实验结果,使用转移矩阵技术计算了导带和价带中的所有能级,同时考虑了有效质量和抛物线带近似。 PR结果与计算出的光学跃迁能量的比较显示出极好的一致性。 QWIP结构的几种光学跃迁能通过PR测量得到解析。结论是,PR光谱学是一种非常有用的实验工具,可以在室温下高精度地表征复杂的结构。

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