Catching Element Formation In The Act - The Case for a New MeV Gamma-Ray Mission: Radionuclide Astronomy in the 2020s

F. Timmes, Chris L. Fryer, A. Hungerford, A. Couture, F. Adams, W. Aoki, A. Arcones, W. Arnett, K. Auchettl, M. Avila, C. Badenes, E. Baron, A. Bauswein, J. Beacom, J. Blackmon, S. Blondin, P. Bloser, S. Boggs, A. Boss, T. Brandt, E. Bravo, E. Brown, P. Brown, S. Bruenn, C. Budtz-Jørgensen, E. Burns, A. Calder, R. Caputo, A. Champagne, R. Chevalier, A. Chieffi, K. Chipps, D. Cinabro, O. Clarkson, D. Clayton, A. Coc, D. Connolly, C. Conroy, B. Côté, S. Couch, N. Dauphas, R. deBoer, C. Deibel, P. Denisenkov, S. Desch, L. Dessart, R. Diehl, C. Doherty, I. Domínguez, S. Dong, V. Dwarkadas, Doreen Fan, B. Fields, C. Fields, A. Filippenko, R. Fisher, F. Foucart, C. Fransson, C. Fröhlich, G. Fuller, B. Gibson, Viktoriya Giryanskaya, J. Görres, S. Goriely, S. Grebenev, B. Grefenstette, E. Grohs, J. Guillochon, A. Harpole, C. Harris, J. A. Harris, F. Harrison, D. Hartmann, M. Hashimoto, A. Heger, M. Hernanz, F. Herwig, R. Hirschi, R. Hix, P. Höflich, R. Hoffman, Cole Holcomb, E. Hsiao, C. Iliadis, A. Janiuk, T. Ja
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引用次数: 19

Abstract

Gamma-ray astronomy explores the most energetic photons in nature to address some of the most pressing puzzles in contemporary astrophysics. It encompasses a wide range of objects and phenomena: stars, supernovae, novae, neutron stars, stellar-mass black holes, nucleosynthesis, the interstellar medium, cosmic rays and relativistic-particle acceleration, and the evolution of galaxies. MeV gamma-rays provide a unique probe of nuclear processes in astronomy, directly measuring radioactive decay, nuclear de-excitation, and positron annihilation. The substantial information carried by gamma-ray photons allows us to see deeper into these objects, the bulk of the power is often emitted at gamma-ray energies, and radioactivity provides a natural physical clock that adds unique information. New science will be driven by time-domain population studies at gamma-ray energies. This science is enabled by next-generation gamma-ray instruments with one to two orders of magnitude better sensitivity, larger sky coverage, and faster cadence than all previous gamma-ray instruments. This transformative capability permits: (a) the accurate identification of the gamma-ray emitting objects and correlations with observations taken at other wavelengths and with other messengers; (b) construction of new gamma-ray maps of the Milky Way and other nearby galaxies where extended regions are distinguished from point sources; and (c) considerable serendipitous science of scarce events -- nearby neutron star mergers, for example. Advances in technology push the performance of new gamma-ray instruments to address a wide set of astrophysical questions.
在行动中捕捉元素的形成——一个新的MeV伽马射线任务的案例:21世纪20年代的放射性核素天文学
伽马射线天文学探索自然界中能量最高的光子,以解决当代天体物理学中一些最紧迫的难题。它涵盖了广泛的对象和现象:恒星、超新星、新星、中子星、恒星质量黑洞、核合成、星际介质、宇宙射线和相对论粒子加速,以及星系的演化。MeV伽马射线在天文学中提供了独特的核过程探测,直接测量放射性衰变、核去激发和正电子湮灭。伽马射线光子携带的大量信息使我们能够更深入地观察这些物体,大部分能量通常以伽马射线能量的形式发射,而放射性提供了一个自然的物理时钟,可以添加独特的信息。新的科学将由伽马射线能量的时域种群研究推动。这门科学是由下一代伽马射线仪器实现的,它比以前所有的伽马射线仪器具有一到两个数量级的灵敏度,更大的天空覆盖范围和更快的节奏。这种变革性的能力允许:(a)准确识别伽马射线发射物体,并与其他波长和其他信使的观测结果相关联;(b)构建银河系和其他附近星系的新伽马射线图,其中扩展区域与点源区分开来;(c)大量罕见事件的偶然科学——例如,附近的中子星合并。技术的进步推动了新型伽马射线仪器的性能,以解决一系列广泛的天体物理问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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