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W- Structured type-Ⅱ superlattice based long and very-long wavelength infrared photodiodes

机译:基于W结构的Ⅱ型超晶格长波长和超长波长红外光电二极管

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W-structured type-Ⅱ superlattices (W-SLs) were initially developed to increase the gain of mid-wave infrared (MWIR) lasers. The design addressed the reduced optical transition matrix elements due to the spatial displacement between valence and conduction band wavefunctions in the type-Ⅱ superlattice (T2SL), and further improved the differential optical gain by providing a mostly two-dimensional density of states. As a result, W-SL and W interband cascade lasers have lower thresholds and higher pulsed and cw operating temperatures than any other Ⅲ-V interband MWIR lasers. These same features give W-SLs desirable properties for IR detectors, and here we report for the first time on characteristics of W-SLs used for long-wave and very long-wave IR photodiodes. IR transmission measurements of W and conventional T2SL photodiodes revealed absorption characteristics that are well described by theory, including line shape and peak absorption coefficient values which are about a factor of 2 greater in the W-SLs. Similarly, the low temperature photoluminescence shows much higher and sharper emission intensity in the W-SLs. While the W-SLs have demonstrated superior optical properties, as predicted, additional work is needed to achieve higher detector quantum efficiency. Results suggest that the excess carrier collection in the W-structures is reduced with respect to similar T2SL structures, especially for the lowest energy state. Possible mechanisms of excess carrier loss, as well as new designs to improve charge collection, in the W-SL, will be discussed.
机译:W结构的II型超晶格(W-SLs)最初是为了增加中波红外(MWIR)激光器的增益而开发的。该设计解决了由于Ⅱ型超晶格(T2SL)中的价键和导带波函数之间的空间位移而导致的光学跃迁矩阵元素减少的问题,并通过提供状态二维的密度来进一步提高了差分光学增益。因此,W-SL和W带间级联激光器比其他任何Ⅲ-V带间MWIR激光器具有更低的阈值以及更高的脉冲和连续工作温度。这些相同的特征使W-SL具有理想的红外探测器性能,在此我们首次报道用于长波和超长波红外光电二极管的W-SL的特性。 W和常规T2SL光电二极管的红外透射测量显示,吸收特性已得到理论的很好描述,包括线形和峰值吸收系数值,在W-SL中约为2倍。同样,低温光致发光在W-SL中显示出更高且更清晰的发射强度。正如预期的那样,尽管W-SL具有出色的光学性能,但仍需要做更多的工作才能获得更高的探测器量子效率。结果表明,相对于类似的T2SL结构,W结构中多余的载流子收集得以减少,尤其是对于最低能量状态而言。将讨论W-SL中多余载流子损耗的可能机制,以及改善电荷收集的新设计。

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