Richter H, Greiner-Bär M, Pavlov S G, Semenov A D, Wienold M, Schrottke L, Giehler M, Hey R, Grahn H T, Hübers H-W
German Aerospace Center (DLR), Institute of Planetary Research, Berlin, Germany.
Opt Express. 2010 May 10;18(10):10177-87. doi: 10.1364/OE.18.010177.
We report on the development of a compact, easy-to-use terahertz radiation source, which combines a quantum-cascade laser (QCL) operating at 3.1 THz with a compact, low-input-power Stirling cooler. The QCL, which is based on a two-miniband design, has been developed for high output and low electrical pump power. The amount of generated heat complies with the nominal cooling capacity of the Stirling cooler of 7 W at 65 K with 240 W of electrical input power. Special care has been taken to achieve a good thermal coupling between the QCL and the cold finger of the cooler. The whole system weighs less than 15 kg including the cooler and power supplies. The maximum output power is 8 mW at 3.1 THz. With an appropriate optical beam shaping, the emission profile of the laser is fundamental Gaussian. The applicability of the system is demonstrated by imaging and molecular-spectroscopy experiments.
我们报道了一种紧凑、易用的太赫兹辐射源的研制情况,该辐射源将工作在3.1太赫兹的量子级联激光器(QCL)与紧凑、低输入功率的斯特林制冷机相结合。基于双微带设计的QCL已被开发用于高输出和低电泵浦功率。产生的热量符合斯特林制冷机在65K时7W的标称制冷量,电输入功率为240W。已特别注意在QCL和制冷机冷指之间实现良好的热耦合。整个系统包括制冷机和电源在内重量不到15千克。在3.1太赫兹时最大输出功率为8毫瓦。通过适当的光束整形,激光器的发射轮廓为基本高斯分布。成像和分子光谱实验证明了该系统的适用性。