Exploring one giga electronvolt cosmic gamma rays with a Cherenkov plenoscope capable of recording atmospheric light fields, Part 1: Optics

IF 4.2 3区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Sebastian Achim Mueller , Spyridon Daglas , Axel Arbet Engels , Max Ludwig Ahnen , Dominik Neise , Adrian Egger , Eleni Chatzi , Adrian Biland , Werner Hofmann
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Abstract

Detecting cosmic gamma rays at high rates is the key to time-resolve the acceleration of particles within some of the most powerful events in the universe. Time-resolving the emission of gamma rays from merging celestial bodies, apparently random bursts of gamma rays, recurring novas in binary systems, flaring jets from active galactic nuclei, clocking pulsars, and many more became a critical contribution to astronomy. For good timing on account of high rates, we would ideally collect the naturally more abundant, low energetic gamma rays in the domain of one giga electronvolt in large areas. Satellites detect low energetic gamma rays but only in small collecting areas. Cherenkov telescopes have large collecting areas but can only detect the rare, high energetic gamma rays. To detect gamma rays with lower energies, Cherenkov-telescopes need to increase in precision and size. But when we push the concept of the –far/tele– seeing Cherenkov telescope accordingly, the telescope’s physical limits show more clearly. The narrower depth-of-field of larger mirrors, the aberrations of mirrors, and the deformations of mirrors and mechanics all blur the telescope’s image. To overcome these limits, we propose to record the –full/plenum– Cherenkov-light field of an atmospheric shower, i.e. recording the directions and impacts of each individual Cherenkov photon simultaneously, with a novel class of instrument. This novel Cherenkov plenoscope can turn a narrow depth-of-field into the perception of depth, can compensate aberrations, and can tolerate deformations. We design a Cherenkov plenoscope to explore timing by detecting low energetic gamma rays in large areas.

利用能够记录大气光场的切伦科夫倍增镜探索千兆电子伏特宇宙伽马射线,第 1 部分:光学
高频率探测宇宙伽马射线是对宇宙中一些最强大事件中的粒子加速进行时间分辨的关键。对并合天体发射的伽马射线、看似随机的伽马射线暴、双星系统中反复出现的新星、活动星系核的喷流、脉冲星的时钟等进行时间分辨,是对天文学的重要贡献。为了在高频率下获得良好的时间,我们最好能在大范围内收集到自然界中更多的千兆电子伏特范围内的低能量伽马射线。卫星可以探测到低能量的伽马射线,但只能收集到小范围的伽马射线。切伦科夫望远镜的收集区域很大,但只能探测到稀有的高能伽马射线。为了探测能量较低的伽马射线,切伦科夫望远镜需要提高精度和扩大尺寸。但是,当我们相应地推动 "远视角/近视角 "切伦科夫望远镜的概念时,该望远镜的物理极限就会更加明显地显现出来。较大镜面的景深较窄、镜面的像差、镜面和机械的变形都会模糊望远镜的图像。为了克服这些限制,我们建议使用一种新型仪器来记录大气阵雨的全/全光子切伦科夫光场,即同时记录每个单独切伦科夫光子的方向和撞击。这种新型的切伦科夫倍增镜可以将窄景深转化为深度感知,可以补偿像差,并能承受变形。我们设计了一种切伦科夫全镜,通过探测大面积的低能量伽马射线来探索时间。
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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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