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首页> 外文期刊>Journal of Applied Physics >Magnetic-field tunable terahertz quantum well infrared photodetector
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Magnetic-field tunable terahertz quantum well infrared photodetector

机译:磁场可调谐太赫兹量子阱红外光电探测器

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摘要

A theoretical model and a design of a magnetic-field tunable CdMnTe/CdMgTe terahertz quantum well infrared photodetector are presented. The energy levels and the corresponding wave functions were computed from the envelope function Schroedinger equation using the effective-mass approximation and accounting for Landau quantization and the giant Zeeman effect induced by magnetic confinement. The electron dynamics were modeled within the self-consistent coupled rate equations approach, with all relevant electron-longitudinal-optical phonon and electron-longitudinal-acoustic phonon scatterings included. A perpendicular magnetic field varying between 0 and 5 T, at a temperature of 1.5 K, was found to enable a large shift of the detection energy, yielding a tuning range between 24.1 and 34.3 meV, equivalent to 51.4-36.1 μm wavelengths. For magnetic fields between 1 and 5 T, when the electron population of the quantum well infrared photodetector is spin polarized, a reasonably low dark current of ≤ 1.4 x 10~(-2) A/cm~2 and a large . responsivity of 0.36-0.64 A/W are predicted.
机译:提出了磁场可调CdMnTe / CdMgTe太赫兹量子阱红外光电探测器的理论模型和设计。使用有效质量近似从包络函数Schroedinger方程计算能级和相应的波函数,并考虑了Landau量化和磁约束引起的巨大塞曼效应。在自洽耦合速率方程方法中对电子动力学进行建模,包括所有相关的电子纵向光学声子和电子纵向声学声子散射。发现在1.5 K的温度下在0至5 T之间变化的垂直磁场能够实现检测能量的大幅移动,从而产生24.1至34.3 meV的调谐范围,相当于51.4-36.1μm波长。对于1至5 T之间的磁场,当量子阱红外光电探测器的电子种群发生自旋极化时,≤1.4 x 10〜(-2)A / cm〜2的低暗电流相当大。预测的响应度为0.36-0.64 A / W。

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