English

The CPT-violating effects on neutrons' gravitational bound state

High Energy Physics - Phenomenology 2020-07-03 v4

Abstract

In this work, the CPT-violating (CPTV) interactions on neutrons' gravitational bound state are studied. With simple analytical solutions, we provide a preliminary investigation on the Lorentz-violation (LV) induced spin precession due to the σb~(1+gz)\vec{\sigma}\cdot\vec{\tilde{b}}(1+gz) and bˉ/mIσp^\bar{b}/m_{_I}\vec{\sigma}\cdot\hat{\vec{p}} couplings, where b~\vec{\tilde{b}} and bˉ\bar{b} represent LV coefficients. The helicity-dependent couplings can induce unusual phase evolutions with position and momentum dependence. As b~\vec{\tilde{b}} varies with time due to the Earth's motion, the spin polarization also shows a sidereal time dependence, and it may be enhanced with time for ultra-stable polarized state of neutrons. The inseparability of the spin-momentum coupling of the bˉ\bar{b}-term can also lead to motional dependent polarization state. With the precisely measured transition frequency between different gravitational bound states, we get a rough bound b~<3.9×103|\vec{\tilde{b}}|<3.9\times10^{-3}GeV for unpolarized neutrons. If the spin-flip transition frequency can reach comparable precision in the future, the bound can be improved to the level of 102410^{-24}GeV. The test of weak equivalence principle with polarized atom may also improve it significantly.

Keywords

Cite

@article{arxiv.1906.00146,
  title  = {The CPT-violating effects on neutrons' gravitational bound state},
  author = {Zhi Xiao and Lijing Shao},
  journal= {arXiv preprint arXiv:1906.00146},
  year   = {2020}
}

Comments

19 pages, 4 figures

R2 v1 2026-06-23T09:36:26.679Z