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Microwave technology applied to terahertz quantum cascade lasers

机译:微波技术应用于太赫兹量子级联激光器

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At Terahertz (THz) frequencies metals are still excellent materials to guide and confine electromagnetic radiation with relatively low losses. Therefore the concepts developed in the microwave range to design efficient waveguides and resonators can be successfully transferred up to this frequency region. A successful example of such "technology transfer" is the so-called metal-metal resonator, effectively used as a waveguide for THz Quantum Cascade Lasers (QCLs). This type of resonator is essentially a downscaled version of a microstrip waveguide, widely used at microwave frequencies. In this work we report on microwave impedance measurements of metal-metal ridge-waveguide THz QCLs. Experimental data, recorded at 4K in the 100MHz-55GHz range, are well reproduced by distributed-parameter transmission-line simulations, showing that the modulation cutoff is limited by the propagation losses that increase for higher microwave frequencies, yielding a 3dB modulation bandwidth of ~70GHz for a lmm-long ridge. By using a shunt-stub matching we demonstrate amplitude modulation of a 2.3THz QCL up to 24GHz. In the last part of this work we discuss the experimental evidence of a feedback-coupling between the intracavity THz field and the microwave field generated by the beating of the Fabry-Perot longitudinal modes above the lasing threshold.
机译:在太赫兹(THz)频率下,金属仍然是引导和限制电磁辐射且损耗相对较低的极佳材料。因此,在微波范围内开发的用于设计高效波导和谐振器的概念可以成功地转移到该频率区域。这种“技术转移”的成功例子是所谓的金属-金属谐振器,该谐振器有效地用作了太赫兹量子级联激光器(QCL)的波导。这种类型的谐振器本质上是微带波导的缩小版本,广泛用于微波频率。在这项工作中,我们报告了金属-金属脊形波导THz QCL的微波阻抗测量。分布参数传输线模拟很好地再现了在100MHz-55GHz范围内以4K记录的实验数据,表明调制截止受到较高微波频率下传播损耗的限制,产生3dB的调制带宽。 1毫米长的山脊为70 GHz。通过使用分流匹配,我们演示了高达24GHz的2.3THz QCL的幅度调制。在这项工作的最后一部分中,我们讨论了腔内太赫兹场和微波场之间的反馈耦合的实验证据,该耦合是由超过激光阈值的Fabry-Perot纵向模式所产生的。

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