English

Magnetic field and gravitational waves from the first-order Phase Transition

Cosmology and Nongalactic Astrophysics 2021-08-24 v3 High Energy Physics - Lattice High Energy Physics - Phenomenology

Abstract

We perform the three dimensional lattice simulation of the magnetic field and gravitational wave productions from bubble collisions during the first-order electroweak phase transition. Except that of the gravitational wave, the power-law spectrum of the magnetic field strength is numerically calculated for the first time, which is of a broken power-law spectrum: Bξf0.91B_{\xi}\propto f^{0.91} for low frequency region of f<ff<f_\star and Bξf1.65B_{\xi}\propto f^{-1.65} for high frequency region of f>ff>f_\star in the thin-wall limit, with the peak frequency being f5f_\star\sim 5 Hz at the phase transition temperature 100 GeV. When the hydrodynamics is taken into account, the generated magnetic field strength can reach Bξ107B_\xi\sim 10^{-7}G at a correlation length ξ107\xi\sim 10^{-7}pc, which may seed the large scale magnetic fields. Our study shows that the measurements of cosmic magnetic field strength and gravitational waves are complementary to probe new physics admitting electroweak phase transition.

Keywords

Cite

@article{arxiv.2012.15625,
  title  = {Magnetic field and gravitational waves from the first-order Phase Transition},
  author = {Yuefeng Di and Jialong Wang and Ruiyu Zhou and Ligong Bian and Rong-Gen Cai and Jing Liu},
  journal= {arXiv preprint arXiv:2012.15625},
  year   = {2021}
}

Comments

8 pages, 6 figures, bottom plots of Fig.2 and Fig.3 are updated