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Quantum-well infrared photodetector structure synthesis: methodology and experimental verification

机译:量子阱红外光电探测器结构合成:方法学和实验验证

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摘要

A numerical method for global optimization of quantum-well infrared photodetector (QWIP) performance parameters is presented and experimentally verified. The single-band effective-mass Schroedinger equation is solved by employing the argument principle method (APM) to extract both the bound and quasibound eigen-energies of the quantum heterostructure. APM is combined with a simulated annealing algorithm to determine a set of device design parameters such as potential barrier height Vi, layer thickness di, number of material layers N, total device length, applied bias VBias etc., for which the QWIP performance is within a predetermined convergence criterion. The method presented incorporates the effect of energy-dependent effective mass of electrons in nonparabolic conduction bands. The present model can handle many optimization parameters and can incorporate fabrication constraints to achieve physically realizable devices. In addition, the method is not limited to the optimization of absorption structures, and can be used for other intersubband devices such as electron-wave Fabry-Perot filters and quantum-cascade lasers. The strength and versatility of the present method are demonstrated by the design of a bicolor equal-absorption-peak QWIP structure, and experimental verification of the zero-bias absorption spectrum is presented.
机译:提出并整体验证了量子阱红外光电探测器(QWIP)性能参数的数值方法。通过采用自变原理原理(APM)来提取量子异质结构的束缚和准束缚本征能,从而解决了单带有效质量薛定ed方程。 APM与模拟退火算法相结合来确定一组器件设计参数,例如,势垒高度Vi,层厚度di,材料层数N,总器件长度,施加的偏压VBias等,其QWIP性能在该范围内预定的收敛准则。提出的方法结合了非抛物型导带中依赖于能量的有效电子质量的影响。本模型可以处理许多优化参数,并且可以合并制造约束以实现物理上可实现的设备。另外,该方法不限于吸收结构的优化,并且可以用于其他子带间设备,例如电子波法布里-珀罗滤波器和量子级联激光器。通过双色等吸收峰QWIP结构的设计证明了本方法的强度和多功能性,并给出了零偏吸收光谱的实验验证。

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