论文标题

开发高度敏感的纳米级过渡边缘传感器,用于Gigahertz天文学和暗物质搜索

Development of highly sensitive nanoscale transition edge sensors for gigahertz astronomy and dark matter search

论文作者

Paolucci, Federico, Buccheri, Vittorio, Germanese, Gaia, Ligato, Nadia, Paoletti, Riccardo, Signorelli, Giovanni, Bitossi, Massimiliano, Spagnolo, Paolo, Falferi, Paolo, Rajteri, Mauro, Gatti, Claudio, Giazotto, Francesco

论文摘要

Terahertz和Sub-Terahertz带检测在基本互动物理和技术应用中都具有关键作用,例如医学成像,工业质量控制和国土安全。特别是,过渡边缘传感器(TESS)和动力电感探测器(儿童)是THZ和Sub-Thz频带中使用的射仪和量热计,用于天体物理学和Astroptroparpicles研究。在这里,我们介绍了铝/铜双层感应结构的电子,热和光谱表征,由于其热性能和简单的微型设计,可以认为是实现极其敏感类别的纳米级TES(Nano-TES)的理想候选者。的确,由于有效区域的维度降低和有效的Andreev Mirror(AM)热限制,我们的设备被预计可以达到最先进的TES性能。特别是,作为验量计,纳米-TES预计将具有噪声等效功率(NEP)为$ 5 \ times10^{ - 20} $ w/$ w/$ \ sqrt {\ mathrm {hz}} $,放松时间为$ \ sim 10 $ ns for sub-thz band cosmic microfective cosmic microfeblows cosmic microfevers cosmic microfeve cosmic microfeve。当作为单光子传感器运行时,预计设备将显示出显着的频率分辨率为100 GHz,指出实验室轴支搜索实验中要求的必要能量灵敏度。最后,提出了不同的多路复用方案,并尺寸用于成像应用。

Terahertz and sub-terahertz band detection has a key role both in fundamental interactions physics and technological applications, such as medical imaging, industrial quality control and homeland security. In particular, transition edge sensors (TESs) and kinetic inductance detectors (KIDs) are the most employed bolometers and calorimeters in the THz and sub-THz band for astrophysics and astroparticles research. Here, we present the electronic, thermal and spectral characterization of an aluminum/copper bilayer sensing structure that, thanks to its thermal properties and a simple miniaturized design, could be considered a perfect candidate to realize an extremely sensitive class of nanoscale TES (nano-TES) for the giga-therahertz band. Indeed, thanks to the reduced dimensionality of the active region and the efficient Andreev mirror (AM) heat confinement, our devices are predicted to reach state-of-the-art TES performance. In particular, as a bolometer the nano-TES is expected to have a noise equivalent power (NEP) of $5\times10^{-20}$ W/$\sqrt{\mathrm{Hz}}$ and a relaxation time of $\sim 10$ ns for the sub-THz band, typical of cosmic microwave background studies. When operated as single-photon sensor, the devices are expected to show a remarkable frequency resolution of 100 GHz, pointing towards the necessary energy sensitivity requested in laboratory axion search experiments. Finally, different multiplexing schemes are proposed and sized for imaging applications.

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