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A Rheological Approach to the Viscous Fermionic Vacuum Condensate. XI. Photon Dynamics, Universe Evolution, and Wakefield Mechanics, JWST Anomalies, Redshift, Relic Radiaton
1. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate, J. Exp. Theor. Phys., (accepted, in press),Manuscript ID: JETP2660290Shlyapik. (2026).
2. A. Shlyapik, Rheological Approach to the Viscous Fermionic Vacuum Condensate. II. Viscous Electrodynamics, J. Exp. Theor. Phys., (accepted, in press), Manuscript ID: JETP2660315Shlyapik. (2026).
3. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. III. Rheological Nature of Galactic Rotation Curves: Eliminating Dark Matter via ψ-Condensate Viscosity, J. Exp. Theor. Phys., (accepted, in press), Manuscript ID: JETP2660330Shlyapik. (2026).
4. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. IV. Relativistic Pericenter Precession of Mercury via ψ-Condensate Drag, J. Exp. Theor. Phys., (accepted, in press), Manuscript ID: JETP2660352Shlyapik. (2026).
5. A. Shlyapik, A Rheological Approach to the Viscous Fermionic Vacuum Condensate. V. Dissipative Dynamics of Gravitational Waves and Rheological Density Limits and Black Hole Shadows in the Viscous Condensate Model, J. Exp. Theor. Phys., (accepted, in press), Manuscript ID: JETP2660359Shlyapik. (2026).
6. R. L. Workman, et al. (Particle Data Group), Review of Particle Physics, Progress of Theoretical and Experimental Physics, 2022(8), 083C01 (2022).
7. L. C. Tu, J. Luo, Experimental tests of Coulomb’s Law and the photon rest mass, Metrologia, 41(4), S136-S146 (2004).
8. I. Labbé, P. van Dokkum, E. Nelson, et al., A population of red candidate massive galaxies 600 Myr after the Big Bang, arXiv:2207.12446 (2022).
9. M. Boylan-Kolchin, Stress testing ΛCDM with high-redshift massive galaxies from JWST, Nature Astronomy, 7(6), 731–735 (2023).
10. F. Zwicky, On the Red Shift of Spectral Lines through Interstellar Space, Proceedings of the National Academy of Sciences, 15(10), 773–779 (1929).
11. R. P. Gupta, JWST early Universe observations and ΛCDM cosmology, Monthly Notices of the Royal Astronomical Society, 524(3), 3385–3395 (2023).
12. E. Hubble, R. C. Tolman, Two Methods of Investigating the Nature of the Nebular Red-shift, Astrophysical Journal, 82, 302–337 (1935).
13. R. C. Tolman, On the estimation of distances in a curved universe with a non-static line element, Proceedings of the National Academy of Sciences, 16(7), 511–520 (1930).
14. V. V. Tsymbal, A. A. Raikov, N. Yu. Lovyagin, Cosmological Observational Tests in the JWST Era. II: The Tolman Test, arXiv preprint arXiv:2604.27867 (2026).
15. Planck Collaboration: N. Aghanim, et al., “Planck 2018 results. VI. Cosmological parameters,” arXiv preprint: arXiv:1807.06209 (2021).