基于sipm的17 m级切伦科夫望远镜性能提升研究

IF 4.2 3区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Cornelia Arcaro , Michele Doro , Julian Sitarek , Dominik Baack
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引用次数: 0

摘要

当前一代的成像大气切伦科夫望远镜(IACTs),包括主要的装置,如MAGIC, H.E.S.S.和VERITAS望远镜,有时被称为第三代这样的仪器。这些望远镜使用由数百到数千个光电倍增管(pmt)组成的多像素相机。pmt的优势目前正受到光子传感器的挑战,光子传感器正在迅速普及:硅光电倍增管(SiPMs),由于其高PDE,低工作电压和安装灵活性,正成为一种有效的替代方案。在本报告中,我们研究了现有的第三代IACT阵列的性能(以MAGIC为例),其中pmt将被sipm取代,应用广义模拟,而不是针对特定的硬件解决方案进行调优。我们发现灵敏度的提高依赖于能量,在当前触发阈值能量下达到三倍。有趣的是,我们还发现,sipm在光谱的红色部分(IACTs的背景来源)具有更强的灵敏度,但并不影响这种性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A study on performance boost of a 17 m class Cherenkov telescope with a SiPM-based camera

The current generation of Imaging Atmospheric Cherenkov Telescopes (IACTs), comprised of major installations such as the MAGIC, H.E.S.S. and VERITAS telescopes, is sometimes called the 3rd generation of such instruments. These telescopes use multipixel cameras composed of hundreds up to thousands photomultiplier tubes (PMTs). The supremacy of PMTs is currently being challenged by photon sensors, rapidly spreading in popularity: the silicon photomultipliers (SiPMs), that are becoming a valid alternative thanks to their high PDE, low operating voltage and flexibility in installation. In this report, we investigate the performance of an existing 3rd generation IACT array (taking as a working example MAGIC), in which PMTs would be replaced with SiPMs, applying generalized simulations, not tuned for a specific hardware solution. We find an energy-dependent improvement in sensitivity, reaching a factor of three at the current trigger threshold energy. Interestingly, we also find that the stronger sensitivity of SiPMs in the red part of the spectrum, a source of background for IACTs, does not affect this performance.

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来源期刊
Astroparticle Physics
Astroparticle Physics 地学天文-天文与天体物理
CiteScore
8.00
自引率
2.90%
发文量
41
审稿时长
79 days
期刊介绍: Astroparticle Physics publishes experimental and theoretical research papers in the interacting fields of Cosmic Ray Physics, Astronomy and Astrophysics, Cosmology and Particle Physics focusing on new developments in the following areas: High-energy cosmic-ray physics and astrophysics; Particle cosmology; Particle astrophysics; Related astrophysics: supernova, AGN, cosmic abundances, dark matter etc.; Gravitational waves; High-energy, VHE and UHE gamma-ray astronomy; High- and low-energy neutrino astronomy; Instrumentation and detector developments related to the above-mentioned fields.
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