Resonant graviton–photon conversion with stochastic magnetic field in the expanding universe

IF 5 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Andrea Addazi , Salvatore Capozziello , Qingyu Gan
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引用次数: 0

Abstract

We investigate graviton–photon oscillations sourced by cosmological magnetic fields from Gertsenshtein effect. We adopt a robust perturbative approach and we find that the conversion probability from graviton to photon can be resonantly enhanced in monochromatic, multi-chromatic and scale invariant spectrum models of stochastic magnetic field fluctuations. In addition, the expansion of the Universe acts as a decoherence factor, which demands a natural discretization scheme along the line of sight. Including also decoherence from cosmic acceleration, we find that conversion probabilities for stochastic magnetic fields are completely different than results predicted from existing magnetic domain-like models in a wide range of magnetic strengths and correlation lengths. Resonances can be tested by radio telescopes as a probe of high frequency gravitational wave sources and primordial magnetogenesis mechanisms.
膨胀宇宙中随机磁场下的共振重子-光子转换
利用格森施泰因效应研究了宇宙磁场引起的重子-光子振荡。我们采用鲁棒摄动方法,发现在随机磁场波动的单色、多色和尺度不变谱模型中,引力子到光子的转换概率可以共振增强。此外,宇宙的膨胀作为退相干因素,这需要沿视线的自然离散方案。包括宇宙加速的退相干,我们发现随机磁场的转换概率与现有的类磁畴模型在很大范围内的磁场强度和相关长度的预测结果完全不同。共振可以通过射电望远镜作为高频引力波源和原始磁发生机制的探针来测试。
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来源期刊
Physics of the Dark Universe
Physics of the Dark Universe ASTRONOMY & ASTROPHYSICS-
CiteScore
9.60
自引率
7.30%
发文量
118
审稿时长
61 days
期刊介绍: Physics of the Dark Universe is an innovative online-only journal that offers rapid publication of peer-reviewed, original research articles considered of high scientific impact. The journal is focused on the understanding of Dark Matter, Dark Energy, Early Universe, gravitational waves and neutrinos, covering all theoretical, experimental and phenomenological aspects.
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