Xennon and Anti-Xennon: A Spinor-Phase / Dark-Compound Framework for a Model-Based Dark-Sector Pair
DOI:
https://doi.org/10.24297/jap.v24i.9907Keywords:
quasi-particle, field-gradient resonance, non-particle dark compound, XENONnT, scalar singlet; AMS-02, Higgs portal, charge conjugation, spinor phase, Xennon; Anti-Xennon; dark matter, dark matter, Anti-Xennon, XennonAbstract
This work develops a dual interpretation of a dark-sector structure named Xennon and its conjugated partner Anti-Xennon. The first branch is a spinor-phase and charge-conjugation construction in which a positive-frequency state, Q_D(t)=exp(+iω_D t)ψ_D, is paired with a negative-frequency conjugated state, Q_Dbar(t)=exp(−iω_D t)ψ_D^c. The second branch is a non-particle dark-compound interpretation in which dark-sector structure is not assumed to be built from discrete particles, but from field-gradient resonance, described by ρ_dark compound = d_e / |∇E|. The manuscript connects these two branches through a quasi-particle/emergent-resonance interpretation: Xennon may be described either as a weakly interacting scalar/Higgs-portal dark-sector particle or as a stable resonance node of a dark compound field. The external data alignment uses the supplementary likelihood dataset of Balan et al. for AMS-02 antiproton constraints in global dark matter fits. From the processed dataset, the highest compatibility region is centered at m_D ≈ 61.66 GeV/c², equivalent to approximately 1.10 × 10^−25 kg. The selected point has λ_hS ≈ 1.36 × 10^−3, <σv> ≈ 2.87 × 10^−28, Ωh² ≈ 1.07 × 10^−2, σ_SI,p ≈ 4.25 × 10^−48 cm², and σ_SI,n ≈ 4.45 × 10^−48 cm². These values suggest an extremely weakly interacting, likely neutral or hidden-charge dark-sector structure. The work is framed as a model-based identification of a conjugated pair, not as an absolute proof or direct detector discovery.
Downloads
References
Balan, S., Kahlhoefer, F., Korsmeier, M., Manconi, S., & Nippel, K. (2023). Supplementary Data: Fast and accurate AMS-02 antiproton likelihoods for global dark matter fits (Version 1.0) [Data set]. Zenodo. https://doi.org/10.5281/zenodo.7952765
Balan, S., Kahlhoefer, F., Korsmeier, M., Manconi, S., & Nippel, K. (2023). Fast and accurate AMS-02 antiproton likelihoods for global dark matter fits. arXiv:2303.07362.
CERN. Antimatter. CERN Science Gateway / CERN official science pages. https://home.cern/science/physics/antimatter/
Aprile, E., et al. (XENON Collaboration). (2023). First Dark Matter Search with Nuclear Recoils from the XENONnT Experiment. Physical Review Letters, 131, 041003. https://doi.org/10.1103/PhysRevLett.131.041003
XENON Collaboration. XENONnT experiment: direct search for dark matter with liquid xenon deep underground at INFN Laboratori Nazionali del Gran Sasso. https://xenonexperiment.org/
Planck Collaboration. (2020). Planck 2018 results. VI. Cosmological parameters. Astronomy & Astrophysics, 641, A6.
European Space Agency. Planck publications and 2018 final release. https://www.cosmos.esa.int/web/planck/publications
Dark Energy Survey. Data access and Year-One data release documentation. https://www.darkenergysurvey.org/the-des-project/data-access/
NOIRLab Astro Data Lab. Dark Energy Survey data service. https://datalab.noirlab.edu/data/dark-energy-survey
Sloan Digital Sky Survey. Data Release 17 documentation. https://www.sdss4.org/dr17/
Dirac, P. A. M. (1928). The quantum theory of the electron. Proceedings of the Royal Society A, 117, 610–624.
Silveira, V., & Zee, A. (1985). Scalar phantoms. Physics Letters B, 161, 136–140.
McDonald, J. (1994). Gauge singlet scalars as cold dark matter. Physical Review D, 50, 3637–3649.
Burgess, C. P., Pospelov, M., & ter Veldhuis, T. (2001). The minimal model of nonbaryonic dark matter: A singlet scalar. Nuclear Physics B, 619, 709–728.
Yıldırım, B. (2026). A Quantum Spinor Field Model for Undiscovered Particles. Uploaded manuscript used as theoretical input.
Yıldırım, B. (2026). A Non-Particle-Based Model for Dark Matter Compounds: Theoretical Foundations, Simulation, and Empirical Alignment. Uploaded manuscript used as theoretical input.
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Begüm Yıldırım

This work is licensed under a Creative Commons Attribution 4.0 International License.
All articles published in Journal of Advances in Linguistics are licensed under a Creative Commons Attribution 4.0 International License.