Dark photons and tachyonic instability induced by Barbero–Immirzi parameter and axion–torsion transmutation

IF 4.8 2区 物理与天体物理 Q2 PHYSICS, PARTICLES & FIELDS The European Physical Journal C Pub Date : 2025-04-18 DOI:10.1140/epjc/s10052-025-14065-5
Zhi-Fu Gao, Biaopeng Li, L. C. Garcia de Andrade
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Abstract

In this paper, we investigate Holst gravity by examining two different examples. The first example involves minimal coupling to torsion, while the second explores non-minimal coupling. The motivation for the first example stems from the recent work by Dombriz et al. (Phys Lett B 834:137488, 2022), which utilized a technique of imposing constraint constant coefficients to massive torsion in the model Lagrangian to determine parameters for the Einstein–Cartan–Holst gravity. We extend this methodology to investigate dark photons, where axial torsion transforms into axions. Interest in elucidating the abundance of dark photons within the framework of general relativity was sparked by Agrawal et al. (Phys Lett B 801:135136, 2020). Building on the work of Barman et al. (Phys Rev D 101:075017, 2020), who explored minimal coupling of massive torsion mediated by dark matter (DM) with light torsion on the order of 1.7 TeV, we have derived a Barbero–Immirzi (BI) parameter of approximately 0.775. This value falls within the range established by Panza et al. at TeV scales, specifically \(0\le {\beta } \le {1.185}\) (Phys Rev D 90:125007, 2014). To the best of our knowledge, this is the first time a BI parameter has been induced by dark photons on a minimal Einstein–Cartan (EC) gravity. Very recently, implications of the finding of a BI parameter in cosmological bounces have appeared in the literature (Phys Dark Universe 44:141078, 2024). For a smaller BI parameter, a higher torsion mass of 1.51 TeV is obtained. Nevertheless, this figure is still a signature of light torsion which can be compatible with light dark photon masses. The magnetic helicity instability of the dark photons is investigated. The axion oscillation frequency is shown to depend on the BI parameter, and the BI spectra are determined by a histogram. This study not only broadens the understanding of Holst gravity but also provides crucial insights into the interplay between torsion, dark photons, and axions in the cosmological context.

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由Barbero-Immirzi参数和轴子扭转嬗变引起的暗光子和速子不稳定性
在本文中,我们通过两个不同的例子来研究霍尔斯特引力。第一个示例涉及最小耦合到扭转,而第二个示例探讨非最小耦合。第一个例子的动机源于Dombriz等人最近的工作(Phys Lett B 834:137488, 2022),他们利用一种技术,在模型拉格朗日中对大质量扭转施加约束常数系数,以确定爱因斯坦-卡坦-霍尔斯特引力的参数。我们将这种方法扩展到研究暗光子,其中轴向扭转转化为轴子。在广义相对论框架内阐明暗光子丰度的兴趣是由Agrawal等人引发的(物理学快报B 801:135136, 2020)。Barman等人(Phys Rev D 101: 075017,2020)探索了由暗物质(DM)介导的大质量扭转与1.7 TeV量级的轻扭转的最小耦合,在此基础上,我们推导出了Barbero-Immirzi (BI)参数约为0.775。这个值落在Panza等人在TeV尺度上建立的范围内,特别是\(0\le {\beta } \le {1.185}\) (Phys Rev D 90:125007, 2014)。据我们所知,这是第一次在最小爱因斯坦-卡坦(EC)引力下由暗光子诱导出BI参数。最近,在宇宙弹跳中发现BI参数的含义已经出现在文献中(物理学黑暗宇宙44:141078,2024)。当BI参数较小时,得到较高的扭转质量,为1.51 TeV。然而,这个图形仍然是光扭转的标志,它可以与光暗光子质量兼容。研究了暗光子的磁螺旋度不稳定性。轴子振荡频率与BI参数有关,BI谱由直方图确定。这项研究不仅拓宽了对霍尔斯特引力的理解,而且为宇宙学背景下扭转、暗光子和轴子之间的相互作用提供了重要的见解。
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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来源期刊
The European Physical Journal C
The European Physical Journal C 物理-物理:粒子与场物理
CiteScore
8.10
自引率
15.90%
发文量
1008
审稿时长
2-4 weeks
期刊介绍: Experimental Physics I: Accelerator Based High-Energy Physics Hadron and lepton collider physics Lepton-nucleon scattering High-energy nuclear reactions Standard model precision tests Search for new physics beyond the standard model Heavy flavour physics Neutrino properties Particle detector developments Computational methods and analysis tools Experimental Physics II: Astroparticle Physics Dark matter searches High-energy cosmic rays Double beta decay Long baseline neutrino experiments Neutrino astronomy Axions and other weakly interacting light particles Gravitational waves and observational cosmology Particle detector developments Computational methods and analysis tools Theoretical Physics I: Phenomenology of the Standard Model and Beyond Electroweak interactions Quantum chromo dynamics Heavy quark physics and quark flavour mixing Neutrino physics Phenomenology of astro- and cosmoparticle physics Meson spectroscopy and non-perturbative QCD Low-energy effective field theories Lattice field theory High temperature QCD and heavy ion physics Phenomenology of supersymmetric extensions of the SM Phenomenology of non-supersymmetric extensions of the SM Model building and alternative models of electroweak symmetry breaking Flavour physics beyond the SM Computational algorithms and tools...etc.
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