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High-temperature operation of broadband bidirectional terahertz quantum-cascade lasers

机译:宽带双向太赫兹量子级联激光器的高温操作

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摘要

Terahertz quantum cascade lasers (QCLs) with a broadband gain medium could play an important role for sensing and spectroscopy since then distributed-feedback schemes could be utilized to produce laser arrays on a single semiconductor chip with wide spectral coverage. QCLs can be designed to emit at two different frequencies when biased with opposing electrical polarities. Here, terahertz QCLs with bidirectional operation are developed to achieve broadband lasing from the same semiconductor chip. A three-well design scheme with shallow-well GaAs/Al0.10Ga0.90As superlattices is developed to achieve high-temperature operation for bidirectional QCLs. It is shown that shallow-well heterostructures lead to optimal quantum-transport in the superlattice for bidirectional operation compared to the prevalent GaAs/Al0.15Ga0.85As material system. Broadband lasing in the frequency range of 3.1–3.7 THz is demonstrated for one QCL design, which achieves maximum operating temperatures of 147 K and 128 K respectively in opposing polarities. Dual-color lasing with large frequency separation is demonstrated for a second QCL, that emits at ~3.7 THz and operates up to 121 K in one polarity, and at ~2.7 THz up to 105 K in the opposing polarity. These are the highest operating temperatures achieved for broadband terahertz QCLs at the respective emission frequencies, and could lead to commercial development of broadband terahertz laser arrays.
机译:具有宽带增益介质的太赫兹量子级联激光器(QCL)可以在传感和光谱学中发挥重要作用,因为那时可以利用分布式反馈方案在单个具有宽光谱覆盖范围的半导体芯片上生产激光器阵列。可以将QCL设计为以相反的极性偏置时以两种不同的频率发射。在这里,开发了具有双向操作的太赫兹QCL,以实现同一半导体芯片的宽带激光发射。提出了一种具有浅阱GaAs / Al0.10Ga0.90As超晶格的三阱设计方案,以实现双向QCL的高温工作。结果表明,与流行的GaAs / Al0.15Ga0.85As材料体系相比,浅孔异质结构在双向操作的超晶格中导致最佳量子传输。一种QCL设计证明了在3.1–3.7 THz频率范围内的宽带激光发射,在相反的极性下,其最高工作温度分别为147 K和128K。第二个QCL演示了具有大频率分离的双色激光,该QCL的发射频率为〜3.7 THz,在一个极性下的工作频率最高为121 K,相反极性的工作频率为〜2.7 THz的工作温度最高为105K。这些是宽带太赫兹QCL在各自的发射频率下所能达到的最高工作温度,并可能导致宽带太赫兹激光器阵列的商业开发。

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