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Optical characterisation and analysis of multi-mode pixels for use in future far infrared telescopes

机译:用于未来远红外望远镜的多模像素的光学表征和分析

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In this paper we present the development and verification of feed horn simulation code based on the mode-matching technique to simulate the electromagnetic performance of waveguide based structures of rectangular cross-section. This code is required to model multi-mode pyramidal horns which may be required for future far infrared (far IR) space missions where wavelengths in the range of 30 to 200 μm will be analysed. Multi-mode pyramidal horns can be used effectively to couple radiation to sensitive superconducting devices like Kinetic Inductance Detectors (KIDs) or Transition Edge Sensor (TES) detectors. These detectors could be placed in integrating cavities (to further increase the efficiency) with an absorbing layer used to couple to the radiation. The developed code is capable of modelling each of these elements, and so will allow full optical characterisation of such pixels and allow an optical efficiency to be calculated effectively. As the signals being measured at these short wavelengths are at an extremely low level, the throughput of the system must be maximised and so multi-mode systems are proposed. To this end, the focal planes of future far IR missions may consist of an array of multi-mode rectangular feed horns feeding an array of, for example, TES devices contained in individual integrating cavities. Such TES arrays have been fabricated by SRON Groningen and are currently undergoing comprehensive optical, electrical and thermal verification. In order to fully understand and validate the optical performance of the receiver system, it is necessary to develop comprehensive and robust optical models in parallel. We outline the development and verification of this optical modelling software by means of applying it to a representative multi-mode system operating at 150 GHz in order to obtain sufficiently short execution times so as to comprehensively test the code. SAFARI (SPICA FAR infrared Instrument) is a far infrared imaging grating spectrometer, to be proposed as an ESA M5 mission. It is planned for this mission to be launched on board the proposed SPICA (SPace Infrared telescope for Cosmology and Astrophysics) mission, in collaboration with JAXA. SAFARI is planned to operate in the 1.5-10 THz band, focussing on the formation and evolution of galaxies, stars and planetary systems. The pixel that drove the development of the techniques presented in this paper is typical of one option that could be implemented in the SAFARI focal plane, and so the ability to accurately understand and characterise such pixels is critical in the design phase of the next generation of far IR telescopes.
机译:在本文中,我们介绍了基于模式匹配技术来模拟基于波导的矩形截面结构的电磁性能的馈电喇叭仿真代码的开发和验证。需要此代码来建模多模金字塔形号角,这对于将来的远红外(far IR)太空任务可能是必需的,在该任务中将分析30至200μm的波长。多模金字塔形喇叭可以有效地将辐射耦合到诸如运动电感检测器(KID)或过渡边缘传感器(TES)检测器之类的灵敏超导设备。可以将这些检测器放置在带有用于耦合到辐射的吸收层的集成腔中(以进一步提高效率)。开发的代码能够对这些元素中的每一个进行建模,因此将允许对此类像素进行完整的光学表征,并可以有效地计算出光学效率。由于在这些短波长下测量的信号处于极低的水平,因此必须最大化系统的吞吐量,因此提出了多模系统。为此,未来远红外任务的焦平面可以由多模矩形馈电喇叭阵列组成,该馈电喇叭阵列馈送给例如包含在单个集成腔中的TES装置的阵列。这种TES阵列是由SRON Groningen制造的,目前正在进行全面的光学,电气和热力验证。为了充分理解和验证接收器系统的光学性能,有必要并行开发全面而强大的光学模型。我们概述了此光学建模软件的开发和验证,方法是将该光学建模软件应用于在150 GHz下运行的代表性多模系统,以便获得足够短的执行时间,从而对代码进行全面测试。 SAFARI(SPICA FAR红外仪器)是一种远红外成像光栅光谱仪,拟作为ESA M5任务提出。计划与JAXA合作在拟议的SPICA(宇宙和天体物理学用太空红外望远镜)任务上启动该任务。 SAFARI计划在1.5-10 THz频带内运行,重点关注星系,恒星和行星系统的形成和演化。推动本文介绍的技术发展的像素是可以在SAFARI焦平面中实现的一个选项的典型代表,因此,准确理解和表征此类像素的能力在下一代图像处理器的设计阶段至关重要。远红外望远镜。

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