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Developing Modular Adaptive Transition Edge Sensor SQUID Electronics (MATESSE)

机译:开发模块化自适应过渡边缘传感器鱿鱼电子(Matesse)

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Superconducting Transition Edge Sensor (TES) bolometer arrays with thousands of pixels are essential for achieving the science objectives of future cold far-infrared astronomical telescopes. The readout of such large format TES arrays represents a significant challenge for these missions in terms of power consumption and thermal loading on the coldest cryogenic stages of the instruments. The Time Domain Multiplexing (TDM) technology is mature and has been implemented on many ground-based and air-borne instruments using TES arrays. Several concept studies such as Origins Space Telescope (OST [4]) or Mid-InfraRed Exo-planet CLimate Explorer (MIRECLE [5]) consider this technology and Time Domain Multiplexing as one of the possible baseline technologies for their instruments. In order to address the aforementioned challenges we propose a novel modular solution called Modular Adaptive Transition Edge Sensor Superconducting quantum interference device Electronics (MATESSE) that will serve as the necessary step towards an adaptation of the solution to a space-proven system.
机译:具有数千个像素的超导过渡边缘传感器(TES)阵列对于实现未来冷远红外天文望远镜的科学目标是必不可少的。这种大型格式TES阵列的读数代表了这些特派团在仪器的最寒冷的低通级的功耗和热负荷方面对这些任务产生了重大挑战。时域多路复用(TDM)技术成熟,并且已经在使用TES阵列的许多地面和空气传播的仪器上实现。几项概念研究,如起飞望远镜(OST [4])或中红外外星行星气候探险家(Mirecle [5])将此技术和时域多路复用为其仪器的可能基准技术之一。为了解决上述挑战,我们提出了一种新的模块化解决方案,称为模块化自适应过渡边缘传感器超导量子干扰装置电子(MATESSE),其将作为必要的迈向朝向空间验证系统的实施方案。

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