介质通过与简并谱的混合而衰减

IF 5.5 1区 物理与天体物理 Q1 Physics and Astronomy Journal of High Energy Physics Pub Date : 2025-01-08 DOI:10.1007/JHEP01(2025)043
Ayuki Kamada, Takumi Kuwahara, Shigeki Matsumoto, Yu Watanabe, Yuki Watanabe
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引用次数: 0

摘要

介质粒子向标准模型(SM)粒子的衰变在探索暗扇区情景中起着重要作用。我们以暗光子介体与SM光子混合为例,考虑了这种衰变。我们发现需要仔细分析SM矢量玻色子(如Z玻色子、ρ介子和真介子等)存在时的衰变速率,它们在质量上与介质粒子几乎简并。当混合参数小于某一特定值时,在质量本征态基中计算的介质粒子的衰减率与由矢量玻色子传播子的极点虚部给出的正确结果不一致。在这种情况下,将混合作为扰动参数计算的衰减率与正确的结果是一致的。我们用SM矢量玻色子与暗光子简并的几个具体例子定量地阐明了混合参数的具体值。当矢量玻色子与暗光子之间的质量混合小于(大于)矢量玻色子的衰变宽度时,后者(前者)计算介质粒子衰变速率的方法给出了正确的结果。
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Mediator decay through mixing with degenerate spectrum

The decay of the mediator particle into standard model (SM) particles plays a significant role in exploring the dark sector scenario. We consider such a decay, taking the dark photon mediator as an example that mixes with the SM photon. We find that it requires a careful analysis of the decay rate in the presence of an SM vector boson (e.g., Z boson, ρ meson, and true muonium, etc.) nearly degenerate with the mediator particle in mass. The decay rate of the mediator particle calculated in the mass eigenstate basis does not agree with the correct result, given by the imaginary parts of the poles for the vector boson propagators, when the mixing parameter is smaller than a specific value. In such a case, the decay rate calculated by treating the mixing as a perturbative parameter is in agreement with the correct result. We clarify specific values for the mixing parameter quantitatively using several concrete examples of the SM vector bosons degenerate with the dark photon. When the mass mixing between the vector boson and dark photon is smaller (larger) than the decay width of the vector boson, the latter (former) method to calculate the decay rate of the mediator particle gives the correct result.

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来源期刊
Journal of High Energy Physics
Journal of High Energy Physics 物理-物理:粒子与场物理
CiteScore
10.30
自引率
46.30%
发文量
2107
审稿时长
1.5 months
期刊介绍: The aim of the Journal of High Energy Physics (JHEP) is to ensure fast and efficient online publication tools to the scientific community, while keeping that community in charge of every aspect of the peer-review and publication process in order to ensure the highest quality standards in the journal. Consequently, the Advisory and Editorial Boards, composed of distinguished, active scientists in the field, jointly establish with the Scientific Director the journal''s scientific policy and ensure the scientific quality of accepted articles. JHEP presently encompasses the following areas of theoretical and experimental physics: Collider Physics Underground and Large Array Physics Quantum Field Theory Gauge Field Theories Symmetries String and Brane Theory General Relativity and Gravitation Supersymmetry Mathematical Methods of Physics Mostly Solvable Models Astroparticles Statistical Field Theories Mostly Weak Interactions Mostly Strong Interactions Quantum Field Theory (phenomenology) Strings and Branes Phenomenological Aspects of Supersymmetry Mostly Strong Interactions (phenomenology).
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