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Time-resolved measurement of pulse-to-pulse heating effects in a terahertz quantum cascade laser using an NbN superconducting detector

机译:使用NbN超导探测器在太赫兹量子级联激光器中进行脉冲到脉冲加热效应的时间分辨测量

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摘要

Joule heating causes significant degradation in the power emitted from terahertz-frequency quantum-cascade lasers (THz QCLs). However, to date, it has not been possible to characterize the thermal equilibration time of these devices, since THz power degradation over sub-millisecond time-scales cannot be resolved using conventional bolometric or pyroelectric detectors. In this letter, we use a superconducting antenna-coupled niobium nitride detector to measure the emission from a THz QCL with a nanosecond-scale time-resolution. The emitted THz power is shown to decay more rapidly at higher heat-sink temperatures, and in steady-state the power reduces as the repetition rate of the driving pulses increases. The pulse-to-pulse variation in active-region temperature is inferred by comparing the THz signals with those obtained from low duty-cycle measurements. A thermal resistance of 8.2±0.6 K/W is determined, which is in good agreement with earlier measurements, and we calculate a 370±90-μs bulk heat-storage time, which corresponds to the simulated heat capacity of the device substrate.
机译:焦耳热会导致太赫兹频率量子级联激光器(THz QCL)发射的功率显着降低。但是,迄今为止,尚无法表征这些设备的热平衡时间,因为使用常规的辐射热探测器或热释电探测器无法解决亚毫秒级以上的太赫兹功率退化。在这封信中,我们使用了超导天线耦合氮化铌探测器,以纳秒级的时间分辨率来测量太赫兹QCL的发射。已显示,在较高的散热器温度下,发射的THz功率衰减更快,并且在稳态下,随着驱动脉冲的重复频率增加,功率降低。通过将THz信号与从低占空比测量获得的信号进行比较,可以推断出活动区域温度的脉冲变化。确定的热阻为8.2±0.6 K / W,这与早期的测量结果非常吻合,我们计算出370±90-μs的整体储热时间,该时间与器件基板的模拟热容量相对应。

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