A fresh look at the gravitational-wave signal from cosmological phase transitions

被引:72
作者
Alanne, Tommi [1 ]
Hugle, Thomas [1 ]
Platscher, Moritz [1 ]
Schmitz, Kai [2 ]
机构
[1] Max Planck Inst Kernphys, Saupfercheckweg 1, D-69117 Heidelberg, Germany
[2] CERN, Dept Theoret Phys, CH-1211 Geneva 23, Switzerland
基金
欧盟地平线“2020”;
关键词
Cosmology of Theories beyond the SM; Beyond Standard Model; Thermal Field Theory; STANDARD MODEL; DARK-MATTER;
D O I
10.1007/JHEP03(2020)004
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
Many models of physics beyond the Standard Model predict a strong first-order phase transition (SFOPT) in the early Universe that leads to observable gravitational waves (GWs). In this paper, we propose a novel method for presenting and comparing the GW signals that are predicted by different models. Our approach is based on the observation that the GW signal has an approximately model-independent spectral shape. This allows us to represent it solely in terms of a finite number of observables, that is, a set of peak amplitudes and peak frequencies. As an example, we consider the GW signal in the real-scalar-singlet extension of the Standard Model (xSM). We construct the signal region of the xSM in the space of observables and show how it will be probed by future space-borne interferometers. Our analysis results in sensitivity plots that are reminiscent of similar plots that are typically shown for dark-matter direct-detection experiments, but which are novel in the context of GWs from a SFOPT. These plots set the stage for a systematic model comparison, the exploration of underlying model-parameter dependencies, and the construction of distribution functions in the space of observables. In our plots, the experimental sensitivities of future searches for a stochastic GW signal are indicated by peak-integrated sensitivity curves. A detailed discussion of these curves, including fit functions, is contained in a companion paper [1].
引用
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页数:27
相关论文
共 82 条
[1]  
Addazi A., ARXIV190909740
[2]   Gravitational waves from phase transitions in models with charged singlets [J].
Ahriche, Amine ;
Hashino, Katsuya ;
Kanemura, Shinya ;
Nasri, Salah .
PHYSICS LETTERS B, 2019, 789 :119-126
[3]   Low-scale leptogenesis assisted by a real scalar singlet [J].
Alanne, Tommi ;
Hugle, Thomas ;
Platscher, Moritz ;
Schmitz, Kai .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2019, (03)
[4]   Strong phase transition, dark matter and vacuum stability from simple hidden sectors [J].
Alanne, Tommi ;
Tuominen, Kimmo ;
Vaskonen, Ville .
NUCLEAR PHYSICS B, 2014, 889 :692-711
[5]  
Alves A., ARXIV190905268
[6]   Collider and gravitational wave complementarity in exploring the singlet extension of the standard model [J].
Alves, Alexandre ;
Ghosh, Tathagata ;
Guo, Huai-Ke ;
Sinha, Kuver ;
Vagie, Daniel .
JOURNAL OF HIGH ENERGY PHYSICS, 2019, 2019 (04)
[7]   Resonant di-Higgs production at gravitational wave benchmarks: a collider study using machine learning [J].
Alves, Alexandre ;
Ghosh, Tathagata ;
Guo, Huai-Ke ;
Sinha, Kuver .
JOURNAL OF HIGH ENERGY PHYSICS, 2018, (12)
[8]   Multistep strongly first order phase transitions from new fermions at the TeV scale [J].
Angelescu, Andrei ;
Huang, Peisi .
PHYSICAL REVIEW D, 2019, 99 (05)
[9]  
[Anonymous], PhysRevLett
[10]  
[Anonymous], JCAP