用于 CMB 偏振测量的天线耦合磁性微测辐射计

IF 1.1 3区 物理与天体物理 Q4 PHYSICS, APPLIED
Juan Geria, Alejandro Almela, Juan Bonaparte, Jesús Bonilla-Neira, Luciano Ferreyro, Alan Fuster, Manuel García Redondo, Matías Hampel, Nahuel Müller, Manuel Platino, Juan Salum, Sebastian Kempf, Marc Weber, Alberto Etchegoyen
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引用次数: 0

摘要

在这项工作中,我们提出了一种磁力计,用于在 CMB 中搜索原始 B 模式。这些磁力热量计是对粒子物理学中使用的著名金属磁力热量计的改良。它们依赖于 Au:Er 和 Ag:Er 等合金的磁化与温度的关系。除了这种性质的磁性热量计具有低固有噪声外,金属磁性传感器随温度变化的磁化范围广且平滑,最终可实现高动态范围和直接校准。它们的本征噪声等效功率(NEP)估计在 10-100 aW/\(\sqrt{(}\text {Hz})\)之间。在此,我们概述了利用天线耦合方法设计这种探测器的可行方案,并介绍了所获得的模拟功率传输比;通过将这一结果与其响应率相结合,讨论了探测器的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Antenna-Coupled Magnetic Microbolometers for CMB Polarization Surveys

Antenna-Coupled Magnetic Microbolometers for CMB Polarization Surveys

In this work, we propose a magnetic bolometer to be employed in the search of primordial B-modes in the CMB. These magnetic bolometers are an adaptation of the well-known metallic magnetic calorimeters used in particle physics. They rely on the magnetization dependence on temperature of alloys such as Au:Er and Ag:Er. In addition to the low intrinsic noise a magnetic bolometer of this nature offers, the broad and smooth temperature-dependent magnetization of metallic magnetic sensors ultimately translates to a high dynamic range and straightforward calibration. Their intrinsic noise equivalent power (NEP) is estimated to be in the range of 10–100 aW/\(\sqrt{(}\text {Hz})\). We outline here a workable design for such a detector utilizing an antenna-coupled approach and present the simulated power transfer ratio that was attained; the detector’s performance is discussed by combining this result with its responsivity.

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来源期刊
Journal of Low Temperature Physics
Journal of Low Temperature Physics 物理-物理:凝聚态物理
CiteScore
3.30
自引率
25.00%
发文量
245
审稿时长
1 months
期刊介绍: The Journal of Low Temperature Physics publishes original papers and review articles on all areas of low temperature physics and cryogenics, including theoretical and experimental contributions. Subject areas include: Quantum solids, liquids and gases; Superfluidity; Superconductivity; Condensed matter physics; Experimental techniques; The Journal encourages the submission of Rapid Communications and Special Issues.
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