首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Cryogenic detectors for infrared astronomy: the Single Aperture Far-InfraRed (SAFIR) Observatory
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Cryogenic detectors for infrared astronomy: the Single Aperture Far-InfraRed (SAFIR) Observatory

机译:红外天文低温探测器:单孔远红外(SAFIR)天文台

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The development of a large, far-infrared telescope in space has taken on a new urgency with breakthroughs in detector technology and recognition of the fundamental importance of the far-infrared spectral region to questions ranging from cosmology to our own Solar system. The Single Aperture Far-InfraRed (SAFIR) Observatory is 10m-class far-infrared observatory that would begin development later in this decade to meet these needs. SAFIR's science goals are driven by the fact that youngest stages of almost all phenomena in the universe are shrouded in absorption by and emission from cool dust that emits strongly in the far-infrared, 20 μm-1 mm. Its operating temperature (4 K) and instrument complement would be optimized to reach the natural sky confusion limit in the far-infrared with diffraction-limited performance down to at least the atmospheric cutoff at 40 μm. This would provide a point source sensitivity improvement of several orders of magnitude over that of SIRTF. In order to achieve this, large arrays of detectors with NEPs ranging from a few to a hundred zeptowatts/sqrt(Hz) are needed. Very low temperature superconducting transition edge sensors and far-infrared "photon counting" detectors are critical technologies requiring development for the SAFIR mission.
机译:太空中大型远红外望远镜的发展具有新的紧迫性,它在探测器技术上取得了突破,并认识到远红外光谱区的根本重要性以及从宇宙学到我们自己的太阳系等问题。单孔远红外天文台是1000万级的远红外天文台,它将在本十年后期开始开发以满足这些需求。 SAFIR的科学目标是受以下事实驱使的:宇宙中几乎所有现象的最年轻阶段都被冷尘埃吸收和散发,冷尘埃在20μm-1mm的远红外线中强烈发射。其工作温度(4 K)和仪器补全将进行优化,以达到远红外的自然天空混乱极限,并具有至少在40μm的大气截止下具有衍射极限的性能。与SIRTF相比,这将使点源灵敏度提高几个数量级。为了实现这一点,需要具有NEP范围从几到一百zeptowatt / sqrt(Hz)的大型探测器阵列。极低温超导过渡边缘传感器和远红外“光子计数”检测器是需要为SAFIR任务开发的关键技术。

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