太赫兹量子级联激光器

R. Kohler, A. Tredicucci, F. Beltram, H. Beere, E. H. Linfield, A. Davies, D. A. Ritchie, R.C. Iotti, F. Rossi
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引用次数: 8

摘要

电磁波谱的太赫兹区域(1-10太赫兹)为光谱学、自由空间通信、遥感和医学成像提供了充足的机会。然而,太赫兹波在所有这些领域的使用由于缺乏适当的源而受到限制。事实上,现有的固态发射器缺乏在实际设备中实现所需的紧凑性、可集成性和便携性的一般要求,并且存在输出功率低、可调性有限和/或液氦低温的必要性。近年来,由于波长不断增加的量子级联激光器的发展,太赫兹半导体激光器的研究获得了新的生机。然而,与跃迁能量低于光学声子共振和有效限制发射辐射有关的基本问题严重阻碍了太赫兹QC器件的实现。在详细的理论建模和采用特殊的部分金属波导的帮助下,我们现在展示了基于GaAs/AlGaAs QC异质结构导带中微带间跃迁的单片太赫兹异质结构激光器。在4.4太赫兹(/spl λ / /spl sim/ 67 /spl mu/m)下实现了单模发射,输出功率大于2 mW。虽然目前的工作限制在60 K,但低于300 A/cm/sup 2/的低阈值电流密度证明了在更高温度下的巨大发展潜力。
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Terahertz quantum cascade lasers
The terahertz region (1-10 THz) of the electromagnetic spectrum offers ample opportunities in spectroscopy, free space communications, remote sensing and medical imaging. Yet, the use of THz waves in all these fields has been limited by the absence of appropriate sources. Existing solid-state emitters, in fact, lack the general requisites of compactness, integrability and portability necessary for implementation in actual devices, and suffer from low output powers, limited tunability, and/or the necessity of liquid helium cryogenics. Research on THz semiconductor lasers has received new life in the last few years thanks to the development of quantum cascade (QC) lasers of ever increasing wavelength. Yet, fundamental problems related to the transition energy being below the optical phonon resonance and to efficient confinement of the emitted radiation have seriously hampered the realization of THz QC devices. With the help of detailed theoretical modelling and the adoption of a special partially metallic waveguide, we have now demonstrated a monolithic THz heterostructure laser based on interminiband transitions in the conduction band of a GaAs/AlGaAs QC heterostructure. Single mode emission has been achieved at 4.4 THz (/spl lambda/ /spl sim/ 67 /spl mu/m) with high output powers of more than 2 mW. Although operation is presently limited to 60 K, the low threshold current density of less than 300 A/cm/sup 2/ testifies the great development potential for higher temperatures.
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