Galactic Microquasar and Supernova Remnants Imprinting on Diffuse Neutrino and Gamma-Ray Sky
银河系微类星体与超新星遗迹在弥散中微子和伽马射线天空上的印记
Recent detections of Galactic diffuse neutrinos by IceCube and $γ$-rays by LHAASO offer direct probes into the origin of Galactic cosmic rays. Conventional diffuse templates typically assume a single cosmic-ray injection spectrum across a wide energy range, without accounting for independent contributions from distinct accelerator populations. Here, we present a numerical framework that models Galactic diffuse neutrino and $γ$-ray emission that incorporates contributions from both microquasar and supernova remnant populations. By anchoring CR injection to local observations and utilizing high-resolution 3D target gas distributions, our model suggests multi-population contributions to the diffuse sky: escaped cosmic rays from supernova remnants dominate below $\sim10\text{ TeV}$, while those from microquasars become the primary driver at higher energies. Our predicted neutrino flux agrees well with the recent 12-year IceCube measurements, establishing a physically motivated baseline for the diffuse hadronic background while leaving room for unresolved point-like sources. This flexible framework provides testable predictions for current and future multi-messenger observatories, accommodating diverse accelerator populations and updated observational constraints.
展开 ▾首次将微类星体和超新星遗迹作为独立注入谱群体纳入银河系弥散模板,而非假设单一宇宙线谱;由此自然给出 10 TeV 以上谱硬化,并预言 >100 TeV 弥散伽马射线进入强子主导区,可作为分辨 PeVatron 的物理基线。
银河系弥散中微子观测 Abbasi+ 2023 与 LHAASO 弥散伽马测量 Cao+ 2023 提供了直接检验强子辐射的窗口,但以往模板通常假设单一宇宙线注入谱,未区分微类星体与超新星遗迹等不同加速器群体。本文在前期微类星体遗迹输运框架 Zhang+ 2026 基础上,将两类源群体作为独立注入成分,结合高分辨率三维气体分布 Mertsch+ 2023 计算弥散中微子和伽马射线。结果与 CRINGE 等全局拟合模板 Schwefer+ 2023 一致,并自然解释 10 TeV 以上谱硬化;未来可纳入各向异性输运、源分布涨落和光子吸收,为 IceCube、KM3NeT、Baikal-GVD 的点源搜寻与 PeVatron 分辨提供可检验模板。
预印本 2026-08-23 · 收录 2026-08-25