In this paper, we discuss the possibility that black holes can indirectly and directly produce dark matter. As well as the possibility that neutron stars and hypothetical quark and boson stars could also produce it. We conjecture that, just as the relativistic jets emitted by radiation from the regions associated with high-mass black holes enable the creation of galaxies, the lateral jets of this same radiation enable the creation of dark matter in the regions surrounding the black hole. We challenge the ΛCDM theory, whose disproportionate cosmological constant leads to the “vacuum catastrophe”. We argue that dark matter appeared after the Big Bang and that the production of the first lumps of the universe would have started with ordinary matter. By way of quantum physics, we explore the nature of dark matter and assume that dark matter and ordinary matter have hydrogen as their deep identity. During a quantum phase transition, molecular hydrogen would become analogous to a Cooper pair whose dibaryons behave like bosons. All matter particles at a certain threshold temperature become phased to form a coherent macroscopic wave of dark matter that has the characteristics of a soliton. When the crust of ordinary matter in hyper-condensed stars—the degeneracy pressure of quantum mechanics—overwhelms gravity, the soliton is repelled into space by “superdiffusion”. Finally, we show that in many cases, a black hole can dissolve in whole or in part into dark matter. We hypothesize that there would be one or more other censorships between the event horizon and cosmic censorship. The trapped surface of one of these pre-Planck censorships would result in a quantum phase transition marking a change of state towards dark matter. This pre-Planck wall would trigger a spatial extension of the black hole into space in the form of a “macroscopic dark matter wave”.
KeywordsDark MatterAGNFeedbackLateral FeedbackChange of StateQuantum Phase TransitionMacroscopic Dark Matter Quantum WaveQ-Balls Solitons
Silk, J., Begelman, M.C., Norman, C., Nusser, A. and Wyse, R.F.G. (2024) Which Came First: Supermassive Black Holes or Galaxies? Insights from JWST. The Astrophysical Journal Letters , 961, L39. https://doi.org/10.3847/2041-8213/ad1bf0
Ruelle, D. (1991) Hasard et chaos. Odile Jacob Points, 163, 168-170.
NASA Webb Mission Team (2024) Webb Unlocks Secrets of One of the Most Dis-tant Galaxies Ever Seen. https://science.nasa.gov/missions/webb/webb-unlocks-secrets-of-one-of-the-most-distant-galaxies-ever-seen/
Cooper, K. (2024) The James Webb Space Telescope May Have Found Some of the Very 1st Stars. https://www.space.com/james-webb-space-telescope-universe-first-stars-black-hole-population-3
Fabian, A.C. (2012) Observational Evidence of Active Galactic Nuclei Feedback. Annual Review of Astronomy and Astrophysics , 50, 455-489. https://doi.org/10.1146/annurev-astro-081811-125521
Magorrian, J., Tremaine, S., Richstone, D., Bender, R., Bower, G., Dressler, A., et al . (1998) The Demography of Massive Dark Objects in Galaxy Centers. The Astronomical Journal , 115, 2285-2305. https://doi.org/10.1086/300353
Gebhardt, K., Bender, R., Bower, G., Dressler, A., Faber, S.M., Filippenko, A.V., et al . (2000) A Relationship between Nuclear Black Hole Mass and Galaxy Velocity Dispersion. The Astrophysical Journal , 539, L13-L16. https://doi.org/10.1086/312840
Ferrarese, L. and Merritt, D. (2000) A Fundamental Relation between Supermassive Black Holes and Their Host Galaxies. The Astrophysical Journal , 539, L9-L12. https://doi.org/10.1086/312838
Silk, J. and Rees, M.J. (1998) Quasars and Galaxy Formation. Astronomy & Astrophysics , 331, L1-L4.
Haehnelt, M.G., Natarajan, P. and Rees, M.J. (1998) High-Redshift Galaxies, Their Active Nuclei and Central Black Holes. Monthly Notices of the Royal Astronomical Society , 300, 817-827. https://doi.org/10.1046/j.1365-8711.1998.01951.x
King, A. (2003) Black Holes, Galaxy Formation, and the MBH- σ Relation. The Astrophysical Journal , 596, L27-L29. https://doi.org/10.1086/379143
Peng, C.Y. (2007) How Mergers May Affect the Mass Scaling Relation between Gravitationally Bound Systems. The Astrophysical Journal , 671, 1098-1107. https://doi.org/10.1086/522774
Dibaryons
Superdiffusion
Anglés-Alcázar, D., Davé, R., Faucher-Giguère, C., Özel, F. and Hopkins, P.F. (2016) Gravitational Torque-Driven Black Hole Growth and Feedback in Cosmological Simulations. Monthly Notices of the Royal Astronomical Society , 464, 2840-2853. https://doi.org/10.1093/mnras/stw2565
Veilleux, S., Bolatto, A., Tombesi, F., Meléndez, M., Sturm, E., González-Alfonso, E., et al . (2017) Quasar Feedback in the Ultraluminous Infrared Galaxy F11119+3257: Connecting the Accretion Disk Wind with the Large-Scale Molecular Outflow. The Astrophysical Journal , 843, Article No. 18. https://doi.org/10.3847/1538-4357/aa767d
Harrison, C.M., Costa, T., Tadhunter, C.N., Flütsch, A., Kakkad, D., Perna, M., et al . (2018) AGN Outflows and Feedback Twenty Years on. Nature Astronomy , 2, 198-205. https://doi.org/10.1038/s41550-018-0403-6
Baade, W. and Minkowski, R. (1954) Identification of the Radio Sources in Cassiopeia, Cygnus A, and Puppis A. The Astrophysical Journal , 119, 206-214. https://doi.org/10.1086/145812
Burbidge, G.R. (1958) Nuclear Energy Generation and Dissipation in Galaxies. Publications of the Astronomical Society of the Pacific , 70, 83-89. https://doi.org/10.1086/127179
Matthews, T.A. and Sandage, A.R. (1963) Optical Identification of 3c 48, 3c 196, and 3c 286 with Stellar Objects. The Astrophysical Journal , 138, 30-56. https://doi.org/10.1086/147615
Rees, M.J. (1984) Black Hole Models for Active Galactic Nuclei. Annual Review of Astronomy and Astrophysics , 22, 471-506. https://doi.org/10.1146/annurev.aa.22.090184.002351
Sotan, A. (1982) Masses of quasars. Monthly Notices of the Royal Astronomical Society , 200, 115-122. https://doi.org/10.1093/mnras/200.1.115
Yu, Q. and Tremaine, S. (2002) Observational Constraints on Growth of Massive Black Holes. Monthly Notices of the Royal Astronomical Society , 335, 965-976. https://doi.org/10.1046/j.1365-8711.2002.05532.x
Binney, J. and Tabor, G. (1995) Evolving Cooling Flows. Monthly Notices of the Royal Astronomical Society , 276, 663-678. https://doi.org/10.1093/mnras/276.2.663
Ciotti, L. and Ostriker, J.P. (1997) Cooling Flows and Quasars: Different Aspects of the Same Phenomenon? I. Concepts. The Astrophysical Journal , 487, L105-L108. https://doi.org/10.1086/310902
Rodríguez Zaurín, J., Tadhunter, C.N., Rose, M. and Holt, J. (2013) The Importance of Warm, AGN-Driven Outflows in the Nuclear Regions of Nearby ULIRGs. Monthly Notices of the Royal Astronomical Society , 432, 138-166. https://doi.org/10.1093/mnras/stt423
González-Alfonso, E., Fischer, J., Spoon, H.W.W., Stewart, K.P., Ashby, M.L.N., Veilleux, S., et al . (2017) Molecular Outflows in Local ULIRGs: Energetics from Multitransition OH Analysis. The Astrophysical Journal , 836, Article No. 11. https://doi.org/10.3847/1538-4357/836/1/11
Harrison, C.M., Alexander, D.M., Mullaney, J.R. and Swinbank, A.M. (2014) Kiloparsec-Scale Outflows Are Prevalent among Luminous AGN: Outflows and Feedback in the Context of the Overall AGN Population. Monthly Notices of the Royal Astronomical Society , 441, 3306-3347. https://doi.org/10.1093/mnras/stu515
Liu, G., Zakamska, N.L., Greene, J.E., Nesvadba, N.P.H. and Liu, X. (2013) Observations of Feedback from Radio-Quiet Quasars—II. Kinematics of Ionized Gas Nebulae. Monthly Notices of the Royal Astronomical Society , 436, 2576-2597. https://doi.org/10.1093/mnras/stt1755
Sun, A., Greene, J.E. and Zakamska, N.L. (2017) Sizes and Kinematics of Extended Narrow-Line Regions in Luminous Obscured AGN Selected by Broadband Images. The Astrophysical Journal , 835, Article No. 222. https://doi.org/10.3847/1538-4357/835/2/222
Fiore, F., Feruglio, C., Shankar, F., Bischetti, M., Bongiorno, A., Brusa, M., et al . (2017) AGN Wind Scaling Relations and the Co-Evolution of Black Holes and Galaxies. Astronomy & Astrophysics , 601, A143. https://doi.org/10.1051/0004-6361/201629478
Osterbrock, D.E. and Ferland, G.J. (2006) Astrophysics of Gaseous Nebulae and Active Galactic Nuclei.
Cano-Díaz, M., Maiolino, R., Marconi, A., Netzer, H., Shemmer, O. and Cresci, G. (2012) Observational Evidence of Quasar Feedback Quenching Star Formation at High Redshift. Astronomy & Astrophysics , 537, L8. https://doi.org/10.1051/0004-6361/201118358
Brusa, M., Bongiorno, A., Cresci, G., Perna, M., Marconi, A., Mainieri, V., et al . (2014) X-Shooter Reveals Powerful Outflows in z ~ 1.5 X-Ray Selected Obscured Quasi-Stellar Objects. Monthly Notices of the Royal Astronomical Society , 446, 2394-2417. https://doi.org/10.1093/mnras/stu2117
Rose, M., Tadhunter, C., Ramos Almeida, C., Rodríguez Zaurín, J., Santoro, F. and Spence, R. (2017) Quantifying the AGN-Driven Outflows in ULIRGs (QUADROS)—I: Vlt/Xshooter Observations of Nine Nearby Objects. Monthly Notices of the Royal Astronomical Society , 474, 128-156. https://doi.org/10.1093/mnras/stx2590
Di Matteo, T., Springel, V. and Hernquist, L. (2005) Energy Input from Quasars Regulates the Growth and Activity of Black Holes and Their Host Galaxies. Nature , 433, 604-607. https://doi.org/10.1038/nature03335
King, A. and Pounds, K. (2015) Powerful Outflows and Feedback from Active Galactic Nuclei. Annual Review of Astronomy and Astrophysics , 53, 115-154. https://doi.org/10.1146/annurev-astro-082214-122316
Roth, N., Kasen, D., Hopkins, P.F. and Quataert, E. (2012) Three-Dimensional Radiative Transfer Calculations of Radiation Feedback from Massive Black Holes: Outflow of MASS from the DUSTY “Torus”. The Astrophysical Journal , 759, Article No. 36. https://doi.org/10.1088/0004-637x/759/1/36
Gilli, R., Norman, C., Calura, F., Vito, F., Decarli, R., Marchesi, S., et al . (2022) Supermassive Black Holes at High Redshift Are Expected to Be Obscured by Their Massive Host Galaxies’ Interstellar Medium. Astronomy & Astrophysics , 666, A17. https://doi.org/10.1051/0004-6361/202243708
Bagdoo, R. (2023) Cosmological Inconstant, Supernovae 1a and Decelerating Expansion. Journal of Modern Physics , 14, 692-721. https://doi.org/10.4236/jmp.2023.145040
Bagdoo, R. (2024) ARCADE 2 Spatial Roar, What Theory of Relation Reveals. Journal of Modern Physics , 15, 690-719. https://doi.org/10.4236/jmp.2024.155032
Bertone, G. (2014) Le mystère de la matière noire. Dunod, 100, 160, 161, 166.
Hawking, S. (1988) A Brief History of Time. Bantam Books, 99-113.
Aspect, A., et al . (2004) Demain, la physique. Odile Jacob, 67, 123-170.
Ortoli, S. and Pharabod, J.P. (1984) Le cantique des quantiques. La Découverte, 79.
Greene, B. (1999) The Elegant Universe. Vintage Books, 350-352.
Cohen-Tannoudji, G. and Spiro, M. (1986) La matière-espace-temps. Fayard Folio Es-sais, 76, 147-149, 230, 244.
Condensat de Bose-Einstein, Wikipédia. https://fr.wikipedia.org/wiki/Condensat_de_Bose-Einstein
Sutter, P. (2020) Oddball Sexaquark Particles Could Be Immortal, If They Exist at All. LiveScience.
Gohd, C. (2020) Did This Newfound Particle form the Universe’s Dark Matter?
Vijande, J., Valcarce, A. and Richard, J.-M. (2012) Stability of Hexaquarks in the String Limit of Confinement. Physical Review D , 85, Article ID: 014019. https://doi.org/10.1103/physrevd.85.014019
Chirgwin, R. (2014) Massive News in the Micro-World: A Hexaquark Particle. The Register.
Adlarson, P., et al . (2014) Evidence for a New Resonance from Polarized Neutron-Proton Scattering. Physical Review Letters , 112, Article ID: 202301.
Bashkanov, M. and Watts, D.P. (2020) A New Possibility for Light-Quark Dark Matter. Journal of Physics G : Nuclear and Particle Physics , 47, 03LT01. https://doi.org/10.1088/1361-6471/ab67e8
Starr, M. (2020) Physicists Think We Might Have a New, Exciting Dark Matter Candidate. Science Alert.
Adlarson, P., et al . (2014) Neutron-Proton Scattering in the Context of the (2380) Resonance. Physical Review C , 90, Article ID: 035204.
Ambartsumyan, V.A. and Saakyan, G.S. (1960) The Degenerate Superdense Gas of Elementary Particles. Soviet Astronomy , 37, 193.
Stotzer, R.W., et al . (1997) Search for H Dibaryon in He-3 (k−, k+) Hn. Physical Review Letters , 78, 3646-36490.
Alavi-Harati, A., et al . (2000) Search for the Weak Decay of a Lightly Bound H0 Dibaryon. Physical Review Letters , 84, 2593-2597.
Kagiyama, S., Nakamura, A. and Omodaka, T. (1992) Compressible Bag Model and Dibaryon Stars. Zeitschrift für Physik C Particles and Fields , 56, 557-560. https://doi.org/10.1007/bf01474728
Davies, P. (1989) The New Physics. Cambridge University Press, 494-502.
Witten, E. (1984) Cosmic Separation of Phases. Physical Review D , 30, 272-285. https://doi.org/10.1103/physrevd.30.272
Weber, F., Kettner, C. and Glendenning, N.K. (1995) Properties of Strange-Matter Stars. AIP Conference Proceedings , 327, 485-488. https://doi.org/10.1063/1.47327
Zabusky, N.J. and Kruskal, M.D. (1965) Interaction of “Solitons” in a Collisionless Plasma and the Recurrence of Initial States. Physical Review Letters , 15, 240-243. https://doi.org/10.1103/physrevlett.15.240
Liebling, S.L. and Palenzuela, C. (2012) Dynamical Boson Stars. Living Reviews in Relativity , 15, Article No. 6. https://doi.org/10.12942/lrr-2012-6
Bernal, A., Barranco, J., Alic, D. and Palenzuela, C. (2010) Multistate Boson Stars. Physical Review D , 81, Article ID: 044031. https://doi.org/10.1103/physrevd.81.044031
Matos, T. and Ureña-López, L.A. (2000) Quintessence and Scalar Dark Matter in the Universe. Classical and Quantum Gravity , 17, L75-L81. https://doi.org/10.1088/0264-9381/17/13/101
Arbey, A., Lesgourgues, J. and Salati, P. (2001) Quintessential Halos around Galaxies. Physical Review D , 64, Article ID: 123528. https://doi.org/10.1103/physrevd.64.123528
Valdez-Alvarado, S., Palenzuela, C., Alic, D. and Ureña-López, L.A. (2013) Dynamical Evolution of Fermion-Boson Stars. Physical Review D , 87, Article ID: 084040. https://doi.org/10.1103/physrevd.87.084040
Pombo, A.M. and Saltas, I.D. (2023) A Sun-Like Star Orbiting a Boson Star. Monthly Notices of the Royal Astronomical Society , 524, 4083-4090. https://doi.org/10.1093/mnras/stad2151
Manton, N. and Sutcliffe, P. (2004) Topological Solitons. Cambridge University Press. https://doi.org/10.1017/cbo9780511617034
Shnir, Y.M. (2018) Topological and Non-Topological Solitons in Scalar Field Theories. Cambridge University Press. https://doi.org/10.1017/9781108555623
Shnir, Y. (2023) Boson Stars. In: Pfeifer, C. and Lämmerzahl, C., Eds., Modified and Quantum Gravity , Springer International Publishing, 347-362. https://doi.org/10.1007/978-3-031-31520-6_10
Frieman, J.A., Gelmini, G.B., Gleiser, M. and Kolb, E.W. (1988) Primordial Origin of Nontopological Solitons. Physical Review Letters , 60, 2101-2104. https://doi.org/10.1103/physrevlett.60.2101
Kusenko, A. and Shaposhnikov, M. (1998) Supersymmetric Q-Balls as Dark Matter. Physics Letters B , 418, 46-54. https://doi.org/10.1016/s0370-2693(97)01375-0
Dodelson, S. and Widrow, L.M. (1990) Baryon-Symmetric Baryogenesis. Physical Review Letters , 64, 340-343. https://doi.org/10.1103/physrevlett.64.340
Enqvist, K. and McDonald, J. (1998) Q-Balls and Baryogenesis in the MSSM. Physics Letters B , 425, 309-321. https://doi.org/10.1016/s0370-2693(98)00271-8
Kusenko, A. (1997) Solitons in the Supersymmetric Extensions of the Standard Model. Physics Letters B , 405, 108-113. https://doi.org/10.1016/s0370-2693(97)00584-4
Ashley, H. (2021) Weird Quantum Objects Known as Q Balls Could Explain Why We Exist. https://livescience.com
Mandal, S. and Shankaranarayanan, S. (2025) Can Q-Balls Describe Cosmological and Galactic Dark Matter? The European Physical Journal C , 85, Article No. 178. https://doi.org/10.1140/epjc/s10052-025-13889-5
Dolgov, A.D., Dubovsky, S.L., Rubtsov, G.I. and Tkachev, I.I. (2013) Constraints on Millicharged Particles from Planck Data. Physical Review D , 88, Article ID: 117701. https://doi.org/10.1103/physrevd.88.117701
Badertscher, A., Crivelli, P., Fetscher, W., Gendotti, U., Gninenko, S.N., Postoev, V., et al . (2007) Improved Limit on Invisible Decays of Positronium. Physical Review D , 75, Article ID: 032004. https://doi.org/10.1103/physrevd.75.032004
Gninenko, S.N., Krasnikov, N.V. and Rubbia, A. (2007) New Limit on Millicharged Particles from Reactor Neutrino Experiments and the PVLAS Anomaly. Physical Review D , 75, Article ID: 075014. https://doi.org/10.1103/physrevd.75.075014
Gunzig, E. (2008) Que Faisiez-Vous Avant le Big-Bang? Odile Jacob, 163, 281-282.
Bouquet, A., Monnier, E. (2003) Matière sombre et énergie noire. Dunod, 123-127.
Bagdoo, R. (2022) Galaxies Rotation Curves Traced out by the Theory of Relation. European Journal of Applied Sciences , 10, 1-14.
Bagdoo, R. (2019) The Equation of the Universe (According to the Theory of Relation). Journal of Modern Physics , 10, 310-343. https://doi.org/10.4236/jmp.2019.103022
Bagdoo, R. (2019) The World in an Equation: A Reappraisal of the Lemaitre’s Primeval Cosmic Rays. Journal of Modern Physics , 10, 922-952. https://doi.org/10.4236/jmp.2019.108061
Leggett, A.J. (1980) Diatomic Molecules and Cooper Pairs. Lecture Notes in Physics, LNP, Volume 115.
Black Hole, Wikipedia. https://en.wikipedia.org/wiki/Black_hole
Radounskaïa, I. (1972) Idées folles. Édition MIR, 183-185, 188-192.
Hawking, S. and Penrose, R. (1996) The Nature of Space and Time. Princeton University Press, 20-22.
Chelet, Y. (1961) L’énergie Nucléaire. Édition du Seuil, 83, 84, 124.
Magnan, C. (2011) Le théorème du Jardin. AMDS Édition, 267.
Bagdoo, R. (2020) The Pioneer Effect: A New Physics with a New Principle. Journal of Modern Physics , 11, 616-647. https://doi.org/10.4236/jmp.2020.115041
Langin, G. (2020) Zizanie autour de l’expansion cosmique. Ciel & Espace, Hors-série, sept/nov., HS 37, p. 45.