论文标题

毫米波超导的超光谱设备

A millimetre-wave superconducting hyper-spectral device

论文作者

Chowdhury, Usasi, Levy-Bertrand, Florence, Calvo, Martino, Goupy, Johannes, Monfardini, Alessandro

论文摘要

毫米波观测是宇宙学研究的重要工具。已经提出了线强度映射(LIM)技术在三个维度上映射的特定强度(例如[CII],CO)发射,例如从原始星系中,作为红移的函数。超光谱的集成设备有可能替代当前的傅立叶变换,或者计划的基于Fabry-Perot的仪器以毫米和亚毫米的波长运行。目的是执行具有光谱分辨率r = 100-1000的超光谱映射,在大的(即成千上万的梁,天空的瞬时斑块)上。我们开发的创新集成设备允许在低温温度下避免运动部件,复杂和/或配色的光学元件或可调过滤器。原型超光谱焦平面在75-90GHz范围内敏感,并包含16个光谱成像通道的19个角,每个角都选择一个约为0.1GHz的频带。对于每个通道,一个圆锥形角天线与由薄铝制的平面超导谐振吸收器耦合,收集辐射。然后,电容耦合的钛 - 铝双层元素集团元件动力探测器(Lekid)被负责消散和感测在谐振吸收器中建立的超电流。该原型仅在商业单晶蓝宝石底物上仅用两个光刻的步骤制造。它的光谱分辨率约为800。最佳通道的光学噪声等效功率在于观察性相关的4E-17W/SQRT(Hz)范围。所有通道的平均灵敏度约为1E-16W/SQRT(Hz)。如3-D模拟所预期的那样,该设备对极化敏感,为在非常大的瞬时视野上铺平了光谱极光测量的道路。

Millimetre-wave observations represent an important tool for Cosmology studies. The Line Intensity Mapping (LIM) technique has been proposed to map in three dimensions the specific intensity due to line (e.g. [CII], CO) emission, for example from the primordial galaxies, as a function of redshift. Hyper-spectral integrated devices have the potential to replace the current Fourier transform, or the planned Fabry-Perot-based instruments operating at millimetre and sub-millimetre wavelengths. The aim is to perform hyper-spectral mapping, with a spectral resolution R= 100-1000, over large, i.e. thousands of beams, instantaneous patches of the Sky. The innovative integrated device that we have developed allows avoiding moving parts, complicated and/or dispersive optics or tunable filters to be operated at cryogenic temperatures. The prototype hyper-spectral focal plane is sensitive in the 75-90GHz range and contains nineteen horns for sixteen spectral-imaging channels, each selecting a frequency band of about 0.1GHz. For each channel a conical horn antenna, coupled to a planar superconducting resonant absorber made of thin aluminium, collects the radiation. A capacitively coupled titanium-aluminium bilayer Lumped Element Kinetic Inductance Detector (LEKID) is then in charge of dissipating and sensing the super-current established in the resonant absorber. The prototype is fabricated with only two photo-lithography steps over a commercial mono-crystalline sapphire substrate. It exhibits a spectral resolution of about 800. The optical noise equivalent power of the best channels is in the observational relevant 4E-17W/sqrt(Hz) range. The average sensitivity of all the channels is around 1E-16W/sqrt(Hz). The device, as expected from 3-D simulations, is polarisation-sensitive, paving the way to spectro-polarimetry measurements over very large instantaneous field-of-views.

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