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SuperCam, a 64-pixel heterodyne imaging array for the 870 micron atmospheric window

机译:Supercam,870微米大气窗口的64像素外差成像阵列

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We report on the development of SuperCam, a 64 pixel, superheterodyne camera designed for operation in the astrophysically important 870 μm atmospheric window. SuperCam will be used to answer fundamental questions about the physics and chemistry of molecular clouds in the Galaxy and their direct relation to star and planet formation. The advent of such a system will provide an order of magnitude increase in mapping speed over what is now available and revolutionize how observational astronomy is performed in this important wavelength regime. Unlike the situation with bolometric detectors, heterodyne receiver systems are coherent, retaining information about both the amplitude and phase of the incident photon stream. From this information a high resolution spectrum of the incident light can be obtained without multiplexing. SuperCam will be constructed by stacking eight, 1x8 rows of fixed tuned, SIS mixers. The IF output of each mixer will be connected to a low-noise, broadband MMIC amplifier integrated into the mixer block. The instantaneous IF bandwidth of each pixel will be ~2 GHz, with a center frequency of 5 GHz. A spectrum of the central 500 MHz of each IF band will be provided by the array spectrometer. Local oscillator power is provided by a frequency multiplier whose output is divided between the pixels by using a matrix of waveguide power dividers. The mixer array will be cooled to 4K by a closed-cycle refrigeration system. SuperCam will reside at the Cassegrain focus of the 10m Heinrich Hertz telescope (HHT). A prototype single row of the array will be tested on the HHT in 2006, with the first engineering run of the full array in late 2007. The array is designed and constructed so that it may be readily scaled to higher frequencies.
机译:我们报告了SuperCAM的开发,64像素,超差差相机,设计用于在天体物理学重要的870微米大气窗口中的操作。 Supercam将用于回答关于星系中分子云的物理和化学物理和化学的基本问题及其与星球和行星形成的直接关系。这种系统的出现将在现在可用的内容上提供映射速度的数量级,并彻底改变了在这种重要波长方案中进行了观察天文学。与具有辐射检测器的情况不同,外差接收器系统是相干的,保持关于入射光节流的幅度和相位的信息。根据该信息,可以在不复用的情况下获得入射光的高分辨率光谱。 SuperCam将通过堆叠8,1x8行固定调谐,SIS混频器构建。如果每个混频器的IF输出将连接到集成到混频器块中的低噪声,宽带MMIC放大器。每个像素的带宽将是〜2 GHz的瞬时,中心频率为5GHz。阵列光谱仪将提供中央500MHz的中心500MHz的光谱。本地振荡器功率由频率乘数提供,其输出通过使用波导功率分频器的矩阵在像素之间划分。通过闭合循环制冷系统将混合器阵列冷却至4K。 Supercam将居住在10M Heinrich Hertz Telescope(HHT)的Cassegrain焦点。阵列的原型单行将在2006年的HHT上进行测试,其中2007年后的完整阵列的第一工程运行。阵列设计和构造,使其可以容易地缩放到较高的频率。

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