Diffuse neutrino background from past core collapse supernovae

Shin’ichiro ANDO, Nick EKANGER, Shunsaku HORIUCHI, Yusuke KOSHIO
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Abstract

Core collapse supernovae are among the most powerful explosions in the Universe, which emit thermal neutrinos that carry away most of the gravitational binding energy released. These neutrinos produce a diffuse supernova neutrino background (DSNB), which is one of the largest energy budgets among all radiation backgrounds. Detecting the DSNB is an important goal of modern high-energy astrophysics and particle physics, which provides valuable insights into core collapse modeling, neutrino physics, and cosmic supernova rate history. In this review, the key ingredients of DSNB calculation and what can be learned from future detections, including black hole formation and non-standard neutrino interactions are discussed. Moreover, an overview of the latest updates in neutrino experiments, which could lead to the detection of the DSNB in the next decade, is provided. With the promise of this breakthrough discovery on the horizon, the study of DSNB has great potential to further our understanding of the Universe.

来自过去核心坍缩超新星的弥散中微子背景
核心坍缩超新星是宇宙中最强大的爆炸之一,它释放出的热中微子带走了所释放的大部分引力束缚能。这些中微子会产生弥散超新星中微子背景(DSNB),它是所有辐射背景中最大的能量预算之一。探测DSNB是现代高能天体物理学和粒子物理学的一个重要目标,它为内核坍缩建模、中微子物理学和宇宙超新星速率历史提供了宝贵的见解。在这篇综述中,将讨论 DSNB 计算的关键要素以及从未来探测中可以了解到的内容,包括黑洞形成和非标准中微子相互作用。此外,还概述了中微子实验的最新进展,这些进展可能导致在未来十年中探测到 DSNB。在这一突破性发现即将到来之际,DSNB 的研究对于进一步加深我们对宇宙的理解有着巨大的潜力。
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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