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脉冲量子级联激光器中腔体温的时间分辨法布里-珀罗测量。

Time resolved Fabry-Perot measurements of cavity temperature in pulsed QCLs.

作者信息

Gundogdu S, Pisheh H S, Demir A, Gunoven M, Aydinli A, Sirtori C

出版信息

Opt Express. 2018 Mar 19;26(6):6572-6580. doi: 10.1364/OE.26.006572.

Abstract

Temperature rise during operation is a central concern of semiconductor lasers and especially difficult to measure during a pulsed operation. We present a technique for in situ time-resolved temperature measurement of quantum cascade lasers operating in a pulsed mode at ~9.25 μm emission wavelength. Using a step-scan approach with 5 ns resolution, we measure the temporal evolution of the spectral density, observing longitudinal Fabry-Perot modes that correspond to different transverse modes. Considering the multiple thin layers that make up the active layer and the associated Kapitza resistance, thermal properties of QCLs are significantly different than bulk-like laser diodes where this approach was successfully used. Compounded by the lattice expansion and refractive index changes due to time-dependent temperature rise, Fabry-Perot modes were observed and analyzed from the time-resolved emission spectra of quantum cascade lasers to deduce the cavity temperature. Temperature rise of a QCL in a pulsed mode operation between -160 °C to -80 °C was measured as a function of time. Using the temporal temperature variations, a thermal model was constructed that led to the extraction of cavity thermal conductivity in agreement with previous results. Critical in maximizing pulsed output power, the effect of the duty cycle on the evolution of laser heating was studied in situ, leading to a heat map to guide the operation of pulsed lasers.

摘要

运行期间的温度上升是半导体激光器的一个核心问题,在脉冲运行期间尤其难以测量。我们提出了一种技术,用于对在约9.25μm发射波长下以脉冲模式运行的量子级联激光器进行原位时间分辨温度测量。使用分辨率为5 ns的步进扫描方法,我们测量光谱密度的时间演化,观察对应于不同横向模式的纵向法布里-珀罗模式。考虑到构成有源层的多个薄层以及相关的卡皮查电阻,量子级联激光器的热特性与成功应用该方法的块状激光二极管有显著不同。由于随时间变化的温度上升导致晶格膨胀和折射率变化,从量子级联激光器的时间分辨发射光谱中观察并分析了法布里-珀罗模式,以推断腔温度。测量了量子级联激光器在-160°C至-80°C之间脉冲模式运行时的温度上升随时间的变化。利用时间温度变化,构建了一个热模型,该模型导致提取的腔热导率与先前结果一致。在最大化脉冲输出功率方面至关重要的是,原位研究了占空比对激光加热演化的影响,从而得到一张热图以指导脉冲激光器的运行。

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