New high-precision measurement system for electron–positron pairs from sub-GeV/GeV gamma-rays in the emulsion telescope

IF 4.2 3区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Yuya Nakamura , Shigeki Aoki , Tomohiro Hayakawa , Atsushi Iyono , Ayaka Karasuno , Kohichi Kodama , Ryosuke Komatani , Masahiro Komatsu , Masahiro Komiyama , Kenji Kuretsubo , Toshitsugu Marushima , Syota Matsuda , Kunihiro Morishima , Misaki Morishita , Naotaka Naganawa , Mitsuhiro Nakamura , Motoya Nakamura , Takafumi Nakamura , Noboru Nakano , Toshiyuki Nakano , Masahiro Yoshimoto
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引用次数: 0

Abstract

The GRAINE project observes cosmic gamma-rays, using a balloon-borne emulsion-film-based telescope in the sub-GeV/GeV energy band. We reported in our previous balloon experiment in 2018, GRAINE2018, the detection of the known brightest source, Vela pulsar, with the highest angular resolution ever reported in an energy range of >80 MeV. However, the emulsion scanning system used in the experiment was designed to achieve a high-speed scanning, and it was not accurate enough to ensure the optimum spatial resolution of the emulsion film and limited the performance. Here, we report a new high-precision scanning system that can be used to greatly improve the observation result of GRAINE2018 and also be employed in future experiments. The scanning system involves a new algorithm that recognizes each silver grain on an emulsion film and is capable of measuring tracks with a positional resolution for the passing points of tracks of almost the same as the intrinsic resolution of nuclear emulsion film (70 nm). This resolution is approximately one order of magnitude smaller than that obtained with the high-speed scanning system. With this scanning system, an angular resolution for gamma-rays of 0.1° at 1 GeV is expected to be achieved. Furthermore, we successfully combine the new high-precision scanning system with the existing high-speed scanning system, enabling the high-speed and high-precision measurements. Employing these techniques, we reanalyze the gamma-ray events detected previously by only the high-speed scanning system in GRAINE2018 and obtain an about three times higher angular resolution (0.22°) in the 500–700 MeV energy range. Adopting this technique in future observations may provide new insights into the gamma-ray emission from the Galactic center region and may realize polarization measurements of high-energy cosmic gamma-rays.
乳状液望远镜中来自亚戈维/戈维伽马射线的电子-正电子对的新型高精度测量系统
GRAINE项目利用气球搭载的基于乳剂薄膜的望远镜,在亚GeV/GeV能段观测宇宙伽马射线。我们在2018年的上一次气球实验GRAINE2018中报告了对已知最亮源Vela脉冲星的探测,在>80 MeV的能量范围内达到了有史以来最高的角度分辨率。然而,实验中使用的乳剂扫描系统是为实现高速扫描而设计的,其精度不足以确保乳剂膜的最佳空间分辨率,限制了实验的性能。在此,我们报告了一种新的高精度扫描系统,该系统可用于大大改善 GRAINE2018 的观测结果,也可用于未来的实验。该扫描系统采用了一种新算法,能识别乳剂胶片上的每一个银颗粒,并能测量轨迹,轨迹经过点的位置分辨率几乎与核乳剂胶片的固有分辨率(∼70 nm)相同。这一分辨率比高速扫描系统的分辨率低约一个数量级。利用这种扫描系统,在 1 GeV 时伽马射线的角度分辨率有望达到 0.1°。此外,我们还成功地将新的高精度扫描系统与现有的高速扫描系统结合起来,实现了高速和高精度测量。利用这些技术,我们在GRAINE2018中重新分析了以前仅由高速扫描系统探测到的伽马射线事件,并在500-700MeV能量范围内获得了约三倍高的角度分辨率(0.22°)。在未来的观测中采用这种技术可能会为银河系中心区域的伽马射线发射提供新的见解,并可能实现对高能宇宙伽马射线的偏振测量。
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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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