高能暂现源 · 每日文献综述

HIGH-ENERGY TRANSIENTS · DAILY LITERATURE REVIEW
2026 年 6 月 18 日 星期四 · 数据截至 arXiv / ADS 最新收录日
I.

今日头条

No Breaking · 无突发
今日无通过复核的重大进展

当日 3 篇核心与相关文献均为常规推进,核心 2 篇已按优先级列于下方。

II.

核心文献

2 篇
01
优先级 75 · 太阳耀斑

Unprecedented Fast Winking of Solar Flares Triggered by Bursty Magnetic Reconnection

爆发性磁重联触发的太阳耀斑前所未有的快速闪烁

Ting Li, Xuchun Duan, Yijun Hou et al.

原文摘要Abstract

Flare ribbons form as a result of energy deposition associated with particles accelerated in low layers of the solar atmosphere. The fine-scale structures of flare ribbons, also called ribbon kernels, offer a potentially powerful diagnostic of the flare reconnection process, however, to date the dynamic evolution of ribbon kernels has not been fully characterized in statistical studies. Here, we checked the state-of-the-art observations (cadence ≤2.5 s) of solar flares in the ultraviolet from space by Interface Region Imaging Spectrograph over the past 12 yr. Our results showed the first statistical study of multiple spatially resolved flare kernel quasiperiodic pulsation events for 31 flares, with the period of 6─24 s. The ribbon kernels have a spatial scale of 480─1200 km and some kernels exhibit an unprecedented fast "winking" process, i.e., quasiperiodic pulsation-like flashing of individual kernels. The shortest heating time reaches about 2─3 s, implying that the energy is deposited only in a small localized region within flare ribbons, persisting for only a few seconds. Meanwhile, some ribbon kernels were observed to slip along the ribbon at speeds of 20─1800 km s<SUP>−1</SUP>. These observations strongly imply a joint picture for the dynamics and the bursty nature of ribbon kernels as being due to coupled effects of plasmoid formation and three-dimensional magnetic reconnection in the overlaying coronal current sheet. We suggest that the observed flare behaviors provide strong observational evidences of 3D bursty reconnection.

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亮点

首次统计研究了31个耀斑的耀斑带核准周期脉动(周期6-24秒)和前所未有的快速闪烁(加热时标2-3秒),并观测到核沿带以高达1800 km/s的速度滑动,直接证实了爆发性三维磁重联模型。

脉络与展望

太阳耀斑带是耀斑重联过程中能量沉积在低层大气的表现,但过去对其精细结构(耀斑核)的高时间分辨率统计研究较少。本研究利用IRIS近12年的高时间分辨率紫外观测(≤2.5秒),首次对31个耀斑的耀斑带核准周期脉动事件进行了统计分析,揭示了前所未有的快速“眨眼”现象和沿带滑动。这些特征为爆发性三维磁重联理论提供了关键观测支撑,表明核的动力学行为与日冕电流片中的等离子体团形成和三维重联效应密切相关。未来随着更高分辨率观测设备的应用,有望进一步揭示耀斑能量释放的精细物理过程。

预印本 2026-06-26 · 接收 2026-06-18 · 刊出 2026-07-14 · 收录 2026-07-22

02
优先级 70 · 快速射电暴 FRB · 宇宙学与基础物理应用

Fast Radio Burst Cosmology: Hubble Tension and Dark Energy

快速射电暴宇宙学:哈勃常数紧张与暗能量

F. Wang (School of Astronomy and Space Science, Nanjing University; Key Laboratory of Modern Astronomy and Astrophysics, Nanjing University), X. Jia (School of Astronomy and Space Science, Nanjing University; Key Laboratory of Modern Astronomy and Astrophysics, Nanjing University), D. Gao (School of Astronomy and Space Science, Nanjing University; Key Laboratory of Modern Astronomy and Astrophysics, Nanjing University), et al.

原文摘要Abstract

Fast radio bursts (FRBs) are luminous, millisecond-duration extragalactic radio transients that have emerged as a powerful, complementary cosmological probe for investigating the late-time cosmic evolution, offering unique advantages over conventional probes such as Type Ia supernovae, baryon acoustic oscillations, and cosmic microwave background radiation. This review systematically summarizes the cosmological applications of FRBs, focusing on their critical roles in measuring the Hubble constant (H<SUB>0</SUB>) and constraining dark energy properties. Benefiting from the precise dispersion measure—redshift relation of localized FRBs, the integrated electron density of the intergalactic medium (IGM) along the line of sight can be tightly modeled, enabling independent and low-redshift measurements of the cosmic expansion rate. Current FRB samples consisting of localized and non-localized events provide competitive H<SUB>0</SUB> constraints, offering an independent method to measure H<SUB>0</SUB>. FRBs also serve as effective tracers to constrain dark energy equation-of-state parameters. We comprehensively discuss key limiting factors for FRB cosmological precision, including uncertainties in Galactic and host galaxy electron density models, and IGM inhomogeneities. With the rapid growth of high-precision FRB surveys and localized FRB samples, FRBs are promising to provide stringent constraints on late-time cosmic acceleration, dark energy evolution and cosmic baryons.

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AI 综述 AI-generated · 以原文为准
亮点

全面梳理了FRB宇宙学的最新进展,包括大样本定位FRB对H0的3%精度测量、PRS的L-RM关系作为新标准烛光的应用,以及H0红移演化趋势的探讨,为缓解哈勃常数紧张及检验暗能量性质提供了独立途径。

脉络与展望

传统宇宙学探针如宇宙微波背景(CMB)和Ia型超新星(SNe Ia)已分别给出哈勃常数(H0)的精确测量,但两者之间存在约5σ紧张(Planck Collaboration 2020Riess+ 2022)。同时,重子声学振荡(BAO)与超新星等数据结合分析暗示暗能量状态方程可能偏离ΛCDM模型(Adame+ 2025)。快速射电暴(FRB)凭借其色散量-红移(DM-z)关系(Macquart关系),为测量宇宙膨胀历史提供了一种独立于传统距离阶梯的新方法(Macquart+ 2020)。早期利用少量局部定位FRB样本已能给出H0约束(Hagstotz+ 2022Wu+ 2022),近期随着定位样本增至百余个,约束精度显著提升(Gao+ 2025a),并开始探索暗能量参数(Zhou+ 2014Walters+ 2018)。此外,FRB数据还被用于研究H0随红移的可能演化趋势(Jia+ 2023Jia+ 2025a),为缓解哈勃常数紧张提供了新视角。未来,随着SKA、DSA-2000等新一代射电望远镜的建成,FRB样本将呈指数增长,有望成为与超新星互补甚至更优的精密宇宙学探针。

预印本 2026-06-21 · 接收 2026-06-18 · 刊出 2026-07-15 · 收录 2026-07-22