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Meiwen Yang

Publications and source records attributed to Meiwen Yang.

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Multi-Messenger and Paleo-Detector Probes of the LZ Dark Matter Signal

The LUX-ZEPLIN collaboration recently reported a $2.6\sigma$ excess at a nuclear recoil energy of $248\ \text{keV}$, challenging the standard elastic WIMP paradigm. We show that a leptophobic inelastic dark matter model with a vector mediator naturally explains this anomaly while evading all low-energy direct detection constraints. The viable parameter space features $m_{\chi_1}>100~\text{GeV}$ and mass splitting $\delta\sim 200\text{--}300\ \text{keV}$. Our multi-messenger analysis reveals that neither the heavy ($10\ \text{GeV}$) nor light ($10\ \text{MeV}$) mediator scenario reproduces the Fermi-LAT Galactic center excess, and neutrino fluxes remain consistent with IceCube limits. Both scenarios predict recoil tracks near 80 nm in lead-bearing paleo-detectors. At an optimistic uranium-238 concentration of \(10^{-12}\) g/g, 10 mg Gyr of exposure could yield an excess above the estimated background even when astrophysical signals are negligible. The LZ anomaly, if confirmed, points toward a dark sector with inelastic transitions and leptophobic couplings, with the paleo-detector providing the smoking-gun evidence.

hep-ph

Prospects for Probing Sub-GeV Leptophilic Dark Matter with the Future VLAST

The proposed Very Large Area Space Telescope (VLAST), with its expected unprecedented sensitivity in the MeV-GeV range, can also address the longstanding "MeV Gap" in gamma-ray observations. We explore the capability of VLAST to detect sub-GeV leptophilic dark matter (DM) annihilation, focusing on scalar and vector mediators and emphasizing the resonance region where the mediator mass is approximately twice the DM mass. While $s$-wave annihilation is tightly constrained by relic density and cosmic microwave background observations, $p$-wave and mixed $(s+p)$-wave scenarios remain viable, particularly near resonance. Additionally, direct detection experiments, especially those probing DM-electron scattering, significantly constrain nonresonance parameter space but are less effective in the resonance regime. VLAST can uniquely probe this surviving region, outperforming existing and planned instruments, and establishing itself as a crucial tool for indirect detection of thermal relic DM.

hep-ph

Deep Inelastic Scattering in the Capture of Dark Matter by Neutron Stars

Due to the dense environment, neutron stars (NSs) can serve as an ideal laboratory for studying the interactions between dark matter (DM) and ordinary matter. In the process of DM capture, deep inelastic scattering may dominate over elastic scattering, especially for the DM with a large momentum transfer. In this work, we calculate DM-nucleon deep inelastic scattering via a vector mediator and estimate its contribution to the capture rate. Using the surface temperature of the NSs, we derive the exclusion limits for the DM-nucleon scattering cross section in the mass range, $1~{\rm GeV}<m_{\chi}< 10^{5}~{\rm GeV}$. We find the bounds for DM with the mass $\gtrsim$ 1 GeV can be changed several times after including the deep inelastic scattering contribution.

hep-ph