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Type II superlattice detectors at SCD

超晶格 光电子学 砷化铟 材料科学 二极管 分子束外延 兴奋剂 暗电流 量子效率 量子阱 探测器 堆栈(抽象数据类型) 红外线的 发光二极管 物理 光电探测器 光学 砷化镓 外延 图层(电子) 纳米技术 激光器 程序设计语言 计算机科学
作者
P. C. Klipstein,Y. Benny,Y. Cohen,Nethanel Fraenkel,Rami Fraenkel,Sivan Gliksman,A. Glozman,Itay Hirsch,O. Klin,L. Langof,Inna Lukomsky,I. Marderfeld,Benny Milgrom,Hadas Nahor,M. Nitzani,David Rakhmilevich,Lior Shkedy,N. Snapi,I. Shtrichman,Eli Weiss
出处
期刊:Society of Photo-Optical Instrumentation Engineers (SPIE) Conference Series 被引量:8
标识
DOI:10.1117/12.2584601
摘要

The InAs/InSb/GaSb/AlSb family of III-V alloys and superlattice materials offer unique possibilities for band structure engineering, because they can be grown on GaSb or InSb substrates with high quality and satisfactory control of strain, doping and composition. The band profiles and oscillator strengths are also quite predictable, enabling full simulation of detector performance from a basic knowledge of layer and stack thicknesses. In conventional III-V p-n devices, Shockley-Read-Hall (SRH) traps generate a significant flow of thermal carriers in the device depletion region. At SCD, we have overcome this problem by developing XBn and XBp barrier device architectures that suppress these depletion currents, leading to higher operating temperatures or lower dark currents. Our first barrier detector product was launched in 2013 and operates at 150K. It uses a mid-wave infrared (MWIR) XBn device with an InAsSb absorber well matched to the most transparent of the atmospheric windows, at wavelengths between 3 and 4.2μm. However to span the full MWIR and to sense the long-wave infrared (LWIR) spectrum, we have investigated InAs/GaSb type II superlattices (T2SLs), because they offer full tunability. In this work we show that minority carriers in n-type T2SLs are localized and diffuse by variable range hopping, even when the period is short and the valence miniband has a width of 30-40 meV. Unfortunately, this leads to sub-micron diffusion lengths and a low quantum efficiency (QE) of ~20% in a full MWIR XBn device. On the other hand, p-type layers exhibit "metallic" minority carrier transport with much longer diffusion lengths, typically ~7 μm in our LWIR device layers. The successful development of p-type devices has led to our second barrier detector product, which uses an XBp LWIR T2SL and operates at 77K with a cut-off wavelength of 9.5 μm, a focal plane array (FPA) QE of ~50% and background limited performance up to ~90K at F/3. Moreover, the FPA operability is typically above 99.5%, based on stringent production-line criteria. Together with high spatial uniformity and good temporal stability, these barrier detectors are already a realistic alternative to MCT photodiode arrays, and further products operating at other wavelengths will be launched in due course.
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