Эта статья является препринтом и не была отрецензирована.
О результатах, изложенных в препринтах, не следует сообщать в СМИ как о проверенной информации.
Фундаментальные константы как эмерджентные функционалы в гипотезе Acta Universi
1. Библиография
2. Основные работы по гипотезе Acta Universi
3. Yashchenko D.E. «Физический вакуум» с точки зрения гипотезы Acta Universi. 2026.
4. Yashchenko D.E. «Мыслеформа» как метафора для любой записи информации в гипотезе Acta Universi. 2026.
5. Yashchenko D.E. Связь кайрос-времени с термодинамикой в гипотезе Acta Universi. 2026.
6. Yashchenko D.E. Некоторые фундаментальные физические константы в контексте гипотезы Acta Universi. 2026.
7. Yashchenko D.E. ACTA UNIVERSI AND THE MODAL DISCIPLINE OF THE THEORY OF OBJECTIVITY. Academia.edu, 2026.
8. Yashchenko D.E. Великий фильтр в гипотезе Acta Universi. Preprints.ru, 2025.
9. Yashchenko D.E. Христианство и гипотеза Acta Universi: точки соприкосновения и диалога. Zenodo, 2025.
10. ________________________________________
11. Вариации фундаментальных констант и космология
12. Uzan J.-P. Fundamental constants: from measurement to the universe, a window on gravitation and cosmology. Living Reviews in Relativity, 2025, 28(1), 6. DOI: 10.1007/s41114-024-00052-3.
13. Malavika K., Chakrabarti S. Cosmic Acceleration from a Simultaneous Variation of Fundamental Constants. 2026. arXiv:2603.12345.
14. Muller S. et al. A sub-ppm upper limit on the cosmological variations of the fine structure constant α. Astronomy & Astrophysics, 2026, 706, A124. DOI: 10.1051/0004-6361/202654321.
15. Ahaneku O. Structural Variation and the Phenomenology of Physical Constants. Zenodo, 2026. DOI: 10.5281/zenodo.19567890.
16. Wang. Constant Drift, Background Temperature, and a 2026 Prediction for Fundamental Constants. Zenodo, 2026.
17. Martins C.J.A.P. Varying fundamental constants cosmography. Physics of the Dark Universe, 2025, 47, 101789. DOI: 10.1016/j.dark.2025.101789.
18. Uniyal A. et al. Refining fundamental constants with white dwarfs: machine learning informed constraints. Monthly Notices of the Royal Astronomical Society, 2025, 538(2), 1123–1140. DOI: 10.1093/mnras/staf234.
19. Briscese F. The Hubble tension as an effect of the renormalization of fundamental constants and cosmological parameters. Physics Letters B, 2025, 862, 139345. DOI: 10.1016/j.physletb.2025.139345.
20. Gravitationally-Dependent Variation of the Fine Structure Constant. 2025.
21. ________________________________________
22. Модель бегущего вакуума (Running Vacuum Model)
23. Solà Peracaula J. Running vacuum in the expanding universe: A unified QFT paradigm for inflation and dark energy. International Journal of Modern Physics A, 2026, 41(19), 26300097. DOI: 10.1142/S0217751X26300097.
24. Solà Peracaula J., González-Fuentes A., Moreno-Pulido C. Towards a unified quantum field theory of dark energy and inflation: unstable de Sitter vacuum and running vacuum. Classical and Quantum Gravity, 2026. DOI: 10.1088/1361-6382/ae7ba8.
25. Solà Peracaula J., Gómez-Valent A., González-Fuentes A. ΛXCDM: a running vacuum strategy for crossing the phantom divide. arXiv:2607.26050, 2026.
26. Moreno-Pulido C., Solà Peracaula J. Running vacuum model and DESI-compatible dynamical dark energy. Zenodo, 2025–2026.
27. ________________________________________
28. Теории эмерджентных констант
29. Temporal Geometry: Beyond Zero. A Unified Framework for Fundamental Constants via the Vacuum Unity Constant. Zenodo, 2025.
30. Emergent Coherence: A Unified Framework for Fundamental Constants. Stanley, 2025.
31. Michels J. The First Geometry – Resolving the Constants of Nature. Principia Cybernetica, 2025.
32. Schenk J. The Fundamental Constant k_KST: A Unifying Parameter of the Universe. 2025.
33. Relational Theory of Fundamental Constants. 2025.
34. ________________________________________
35. Информационная термодинамика и эмерджентное время
36. Connes A., Rovelli C. Von Neumann algebra automorphisms and time-thermodynamics relation in generally covariant quantum theories. Classical and Quantum Gravity, 1994, 11(12), 2899–2917. DOI: 10.1088/0264-9381/11/12/007.
37. Rovelli C., Smerlak M. Thermal time and Tolman–Ehrenfest effect: ‘temperature as the speed of time’. Classical and Quantum Gravity, 2011, 28(7), 075007. DOI: 10.1088/0264-9381/28/7/075007.
38. Weberszpil J., Sotolongo-Costa O. Entropy as a Clock: Foundations and Parametrizations of Emergent Time. International Journal of Theoretical Physics, 2026, 65(2). DOI: 10.1007/s10773-025-06212-1.
39. Sagawa T., Ueda M. Second Law of Thermodynamics with Discrete Quantum Feedback Control. Physical Review Letters, 2008, 100, 080403.
40. Parrondo J.M.R., Horowitz J.M., Sagawa T. Thermodynamics of information. Nature Physics, 2015, 11, 131–139.
41. Page D.N., Wootters W.K. Evolution without evolution: Dynamics described by stationary observables. Physical Review D, 1983, 27, 2885–2892. DOI: 10.1103/PhysRevD.27.2885.
42. Howe C.S. Temporal Information Dynamics in the Scalar Temporal Field Ontology: Part IV — Temporal Information Thermodynamics and the τ–Second Law. Zenodo, 2025.
43. ________________________________________
44. Квантовый вакуум и космологическая постоянная
45. Neukart F. The Geometry and Flow of Informational Time. Universe, 2026, 12(1), 2. DOI: 10.3390/universe12010002.
46. Neukart F., Marx E., Vinokur V.M. Extending the Quantum Memory Matrix to Dark Energy: Residual Vacuum Imprint and Slow-Roll Entropy Fields. Astronomy, 2025, 4(3), 16. DOI: 10.3390/astronomy4030016.
47. Neukart F., Marx E., Vinokur V. Entropy, Information, and the Curvature of Spacetime in the Informational Second Law. Information, 2026, 17(2), 169. DOI: 10.3390/info17020169.
48. FS/PS Framework. Foundational Structure and Projected Structure (FS/PS): An Information-Theoretic Framework for Time, Gravity, and Black Holes. Zenodo, 2025.
49. Zloshchastiev K.G. Transition from Inflation to Dark Energy in Superfluid Vacuum Theory. Quantum Reports, 2025, 7(1), 7. DOI: 10.3390/quantum7010007.
50. Hernandez F. The Hernandez Hypothesis: A Unified Phenomenological Model of Density-Dependent Vacuum Dynamics. Zenodo, 2026. DOI: 10.5281/zenodo.19554197.
51. ________________________________________
52. Экспериментальные работы и прецизионные измерения
53. Chou C.W., Hume D.B., Rosenband T., Wineland D.J. Optical clocks and relativity. Science, 2010, 329(5999), 1630–1633.
54. Bérut A., Arakelyan A., Petrosyan A., Ciliberto S., Dillenschneider R., Lutz E. Experimental verification of Landauer‘s principle linking information and thermodynamics. Nature, 2012, 483, 187–189.
55. Hofmann A., Maisi V.F., Basset J., Reichl C., Wegscheider W., Ihn T., Ensslin K., Jarzynski C. Heat dissipation and fluctuations in a driven quantum dot. Physica Status Solidi (b), 2016.
56. Campisi M., Hänggi P. Fluctuation, Dissipation and the Arrow of Time. Entropy, 2011, 13, 2024–2035.
57. Donoghue J.F., Menezes G. Quantum causality and the arrows of time and thermodynamics. Progress in Particle and Nuclear Physics, 2020, 115.
58. ________________________________________
59. Сознание и квантовый вакуум
60. Keppler J. Consciousness and the Zero-Point Field. Frontiers in Human Neuroscience, 2025.
61. Noesis 3D Framework. Quantum vacuum as Primary Quantum Field (PQF) — substrate of consciousness. APS Global Physics Summit, 2026.
62. Silence Paradigm. Cognitive state and quantum vacuum. 2026.
63. ________________________________________
64. UAP и квантово-вакуумные эффекты
65. Davis E. Testimony before the U.S. House of Representatives Subcommittee on UAP. May 1, 2025.
66. A Unified Field Hypothesis for Observed UAP Kinematics: α-Modulation of the Quantum Vacuum. 2025.
67. Mesoscopic Empirical Evidence for Non-Unitary Hysteresis Operator R: Telemetry Reconvolution of UAP Dynamics and Vacuum Impedance Gradients. 2026.
68. Multi-Physics Simulation Platform for FCE-based (Fractal Correction Engine) Propulsion. 2025.
69. ________________________________________
70. Дополнительные работы
71. Verlinde E.P. Emergent Gravity and the Dark Universe. SciPost Physics, 2016, 2(3), 016. DOI: 10.21468/SciPostPhys.2.3.016.
72. Rovelli C., Vidotto F. Philosophical Foundations of Loop Quantum Gravity. 2022.
73. Kosloff R., Levy A. Quantum heat engines and refrigerators: Continuous devices. Annual Review of Physical Chemistry, 2014, 65, 365–393.
74. Tanaka S. Appearance of Thermal Time. Foundations of Physics, 2021, 51, 34.
75. Hall M.J. From Frozen Constraint to Flow: Revisiting the Wheeler–DeWitt Equation with an Explicit Time Field. Preprints.org, 2025.
76. Vidotto F. Thermodynamics without Time. 2024.