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Zhenwei Chen

Publications and source records attributed to Zhenwei Chen.

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Dark photons from dineutron decays in neutron stars

We focus on a novel baryon-number ($\mathcal{B}$) violating process within neutron stars, where two neutrons convert into two dark photons ($nn \rightarrow VV$) via new Higgs-like scalar bosons. This process is believed to be greatly suppressed at low energies but could be highly amplified in a dense neutron environment like neutron stars. The $nn \rightarrow VV$ process could give rise to non-trivial effects that are distinct from similar processes in previous studies and could alter the properties of neutron stars, such as orbital periods, collapse thresholds, stability conditions, cooling rates, gravitational wave emissions, etc. The emitted dark photons may serve as dark-matter candidates and exhibit special red-shifted energy spectra mainly linked to the compactness of the neutron star. We point out that the dark photons emitted from neutron stars may yield detectable signals in future experiments. We also show that the precision pulsar-timing data provides a powerful tool to constrain the parameter space of new-physics models. The study of the $nn \rightarrow VV$ process, which combines astronomical observations and particle physics models together, may open new windows into the detection of the $\mathcal{B}$-violating effects and may also provide new insights on the study of dark matter.

hep-ph

Neutron-antineutron oscillation accompanied by CP-violation in magnetic fields

In this work, we explore the possibility of the $n$-$\bar{n}$ oscillation accompanied by CP-violation in the presence of magnetic fields. The $n$-$\bar{n}$ oscillation, which violates the baryon number ($\mathcal{B}$) by two units ($|\Delta \mathcal{B}| = 2$), can be originated from the mixing between the neutron ($n$) and the neutral elementary particle ($\eta$) and may give rise to non-trivial effects that are different from previous theoretical predictions. We show that the probability of the $n$-$\bar{n}$ oscillation can be greatly enhanced by adjusting the magnetic field properly. In particular, the peak values of the oscillation probability in the presence of resonance magnetic fields can be $8$-$10$ orders of magnitude higher than that in the absence of magnetic fields. We point out that there might not be sizable CP-violating effects in the $n$-$\bar{n}$ oscillation unless the mass of $\eta$ is close to the mass of the neutron. We also analyze the interplay between various parameters associated with both $\mathcal{B}$-violation and CP-violation and attempt to disentangle the effects of such parameters. The $n$-$\bar{n}$ oscillation process accompanied by CP-violation may open a promising avenue for exploring new physics beyond the Standard Model (SM).

hep-ph