Thursday, September 24, 2026

CERN didn’t find evidence of quantum-sized black holes.



“The LHC has ruled out another hiding place for microscopic black holes while unveiling a new way to hunt for physics beyond the Standard Model. Credit: AI/ScienceDaily.com” (ScienceDaily, The LHC just ruled out another hiding place for quantum black holes)

“Physicists at UC Santa Barbara have pushed the search for microscopic black holes at the Large Hadron Collider (LHC) at the European Organization for Nuclear Research (CERN) into new territory.”(ScienceDaily, The LHC just ruled out another hiding place for quantum black holes)

“These hypothetical black holes would be extraordinarily small and short-lived. If they could be produced at the LHC, their existence might help physicists address some of the deepest unanswered questions about spacetime and gravity. The search also gave researchers a chance to test a new technique for finding rare and previously unknown particles.”(ScienceDaily, The LHC just ruled out another hiding place for quantum black holes)

Could those quantum-sized black holes be the gravitons? And the induction question is: could those mythical WIMPs (Weakly Interacting Massive Particles) be the same quantum black holes? 

Reseachers probably saw one WIMP in deep underground sensors. If. A WIMP is a quantum-sized black hole. That explains why that particle can tunnel itself through everything. The extremely high-energy halo can push those particles through quantum fields away from the route. 

In some models, those quantum-sized black holes can be inside every single particle. That has mass. In those models, quantum-sized black holes form quarks around them. So, if that is right. The quantum pressure keeps those black holes in their form. When. Those quantum fields that we call elementary particles vanish. That. Causes immediate destruction. Without. Quantum pressure. That black hole evaporates immediately. 

“Physicists searching through Large Hadron Collider data found no evidence that the machine has been producing microscopic quantum black holes, but the result sharply narrows where such exotic physics could still be hiding. These hypothetical black holes could form if extra spatial dimensions make gravity much stronger at extremely tiny scales, potentially offering clues toward the long-sought theory of quantum gravity.” (ScienceDaily, The LHC just ruled out another hiding place for quantum black holes)

This means that CERN and the LHC couldn’t create those quantum-sized black holes. One reason could be. Those collisions. And the energy. That formed in them. it. Wasn't symmetrical enough. This means. The impacting particles, like protons, couldn’t compress quarks into quantum-sized black holes. This could explain why. The LHC could form those interesting miniature black holes. 

Another possibility was that the proton-proton collisions formed quantum-sized black holes. But those black holes evaporated so fast. The measurements were impossible. The thing that could make those hypothetical quantum-sized black holes visible is the situation. 

That. The black hole could pull a little bit of energy into itself. That thing makes it possible to measure energy.  That. The black hole releases energy when it evaporates. If. That evaporation happens very soon after the black hole's formation. This thing causes a situation. That evaporating black hole releases as much energy as it bound. That means. That. The black hole could be very hard to detect. 

That evaporation seems like a regular quark collision. The black hole turns Visible. If. It stores enough energy. That. It releases during that process. If that quantum black hole forms in quark-gluon plasma. That black hole must be in an extremely dense environment. The black hole’s energy must be higher than the energy level in its environment. This makes the sensor detect the evaporation. So the black hole needs a little bit of time. To pull more energy into it. Than it had when it was born. 

When a black hole evaporates, it could send X-rays or gamma rays. That kind of radiation could uncover those black holes. But it’s hard to separate it from radiation that comes from those high-energy experiments. 

That makes. It reaches a higher energy level than it had in quark-gluon plasma. The problem is that. If. Those quantum-sized black holes exist. They send gravitational waves. Those waves are very weak. And they remain only when those quantum black holes evaporate. There is a theory. That. Maybe gravitons are those hypothetical quantum black holes. This is one of the most interesting theories in physics. Small black holes can explain dark energy. There is a possibility. That. Near galaxies, energy and matter. 

Along with quantum pressure. Can keep those quantum black holes in their form. When. Those hypothetical black holes escape from the galactic halo. They evaporate. That explanation could seem very strange. But it could explain why we cannot see dark matter. Quantum-sized black holes can explain. Why can't we see dark matter? If dark matter is made of quantum-sized black holes. They could be invisible. 


https://www.sciencedaily.com/releases/2026/09/260922005649.htm


https://en.wikipedia.org/wiki/Weakly_interacting_massive_particle

Sunday, September 13, 2026

White holes: do they exist?



“Although there are no observed white holes within our Universe, the theoretical description of one has many facets in common with what we identify as the hot Big Bang. There could be a connection between white holes and what happens on the other side of black holes, with implications for the origins of our own Universe.” (BigThink, Ask Ethan: Do white holes, the opposite of black holes, physically exist?)

The existence of white holes is uncertain. No confirmed observations of white holes exist. That phenomenon should be the opposite of black holes.  It should be. End of the wormhole. Mathematically, that event exists. But the problem is that nobody has seen it yet. Theoretical gravitational wormholes are channels through space and time. 

But why can’t we see white holes? The easy answer should be. That. They don’t exist. But then we can start to think about other possibilities. There is a possibility. That even if white holes exist. They are not similar objects to stars or black holes. This means that if the wormhole is like a spring. And if that structure acts like a spring. 

That means. When the end of the wormhole closes, the structure starts to open like a serpent. This means that the structure loses its density. And. Let’s energy travel out from it more slowly. Than we even imagine. That means the wormhole is a leaking tube. 

And it leaves energy over a longer distance. This means that the white hole might not have a sharp-edged shape like black holes. There is a possibility. The white hole sends out high-energy gamma photons, so we cannot see those photons or the white hole. And that causes an interesting thought. What if a white hole is invisible?

Another possibility is even more interesting. That possibility is that. If. A white hole is the opposite version of a black hole. That causes an effect. Where. Matter and energy come out from the wormhole to form a bubble. So. Could the wormhole be responsible for the cosmic voids? 

Another version of this model is even more interesting. In this model, the thing is. Maybe energy. That travels in the wormhole. Just pushes the bubble ahead of it. This means that a wormhole and a white hole could exist. But we cannot see them. Because. All of them are outside the universe. This means that a wormhole pushes that bubble ahead of it. Until. It comes out of the universe. 





“A twin of the cosmic filament observed in the MUDF, as seen in a supercomputer simulation describing the large-scale distribution of gas in the Universe. The gas flowing within the cosmic web, feeding galaxy formation at filament intersections, is shown in purple. Credit: Davide Tornotti/University of Milano-Bicocca/MPA” (ScitechDaily, First Direct Image of the Cosmic Web Reveals the Universe’s Hidden Highways)

Outside the universe, quantum resistance cannot keep that structure. Its form. The wormhole’s diameter can be less than a quark. This means that those hypothetical wormholes can be. The same. As hypothetical superstrings. 

There is a model. In which dark energy forms in those hypothetical wormholes. The wormhole is structured so that the entropy is minimal. That allows information to travel faster than outside it. The best evidence of the wormhole's existence is the cosmic web. The galaxy filament. A giant megastructure that connects galaxy clusters. Those filaments can form only if there is a gravitational center. 

The third and most fascinating idea is: maybe the white hole is anchored in time. This means that. The white hole is not bound in time like regular stars. So the white hole exists only at one point in time. When. We travel through time. The white hole’s location in time remains static. And we would see that event as a flash. But then we must realize. Maybe the white hole is an event. That. Connected with the black hole formation. 

When we think about a black hole’s gravitation. Its. Escape velocity is higher than the speed of light. This means. Time dilation causes a situation where time travels backwards in the black hole’s event horizon. This means that a black hole transports information into the past. Or into a point in spacetime. Where the black hole formed. This. Is logical. 

Einstein’s theory of relativity describes time dilation like this. Time moves slower. When. Speed rises. When speed reaches the speed of light. Time stops. And when speed crosses the speed of light. Time should start moving backwards. Gravity is directly compatible with speed. So, when escape velocity crosses the speed of light. 

That means time moves backward. And that forms the model that a black hole itself is a white hole. In this model, the black hole itself transports information. Into. The point where it was born. We see a white hole as the flash of the supernova explosion. Those models are interesting. But they are only models. Direct observations are needed to confirm those events. 


https://bigthink.com/starts-with-a-bang/white-holes-exist/


https://scitechdaily.com/first-direct-image-of-the-cosmic-web-reveals-the-universes-hidden-highways/

Sunday, September 6, 2026

Dark photons can be the most promising candidates for dark matter.


"These include WIMPs (Weakly Interacting Massive Particles), primordial black holes (PBHs), axions, and "dark photons." In theory, this particle was responsible for heating the early Universe and acts as a bridge between the "visible" and dark sectors of the cosmos. According to a new paper, dark photons would not have heated the early Universe as previously thought. Their findings could alter the hunt for Dark Matter by suggesting that dark photons could be hiding in more places than previously thought." (UniverseToday, New Study Expands Search for "Dark Photons," a Leading Dark Matter Candidate)

The thing. What makes a dark photon dark is simple. Dark photon. It must. Have a temperature. Lower than the environment's temperature.  Absolute zero, or zero kelvin (0K), is -273,15 C. The universe’s temperature is three degrees higher. Than. This temperature. So, the photon must have an energy level lower than 3K. 

That. It turns into dark. Energy travels into a lower-energy area. So. The thing. That makes a particle dark is energy that travels into it. 

Absolute zero is the energy minimum. In. The universe. Or the final temperature that we can measure. At that temperature, Helium-3 freezes. But it's possible. That. The electron and proton clouds can have a lower energy level. 

Absolute zero. The object will not transfer its energy. Into. Other particles. There are no other particles. Whose energy level is lower. But when we talk about the energy minimum. We must understand. 

That the local energy minimum is not the same as the energy minimum in space between galactic clusters. 

The energy minimum in our solar system is higher than in interstellar space. When. An object comes from outside space into our solar system. 

It must warm up a little bit. So. It cannot reflect energy until it reaches the energy level. That is higher than its environment. This means. photons that. Come into our galaxy can be invisible because their energy level is lower than the energy minimum in our galaxy. 

A dark photon is a hypothetical particle proposed as the force carrier of a hidden "dark sector," much as the ordinary photon carries electromagnetism. It would interact with normal matter only feebly, through a quantum effect called kinetic mixing. The interaction happens only if the photon’s superstring hits a particle. 

Dark photons are candidates for dark matter. But nobody has found them yet. A hypothetical dark photon is a photon whose energy level is lower than the known energy minimum in the universe. Dark photons can form in some cases.  A superstring that forms a photon starts to spin like a plate. The superstring can have a twisted structure. Similar to a spring.

 When the photon spins like a wheel. That. Structure pulls energy from around it. While. That structure spins. It. Releases energy between those twists. Or if some superstring travels through the center of the photon. That straight superstring acts like a thermal pump. And then that pulls the energy level of photons. Lower than the known energy minimum in the universe.

The low-energy photon starts to bind quantum fields. That makes it behave as if it has mass. The third possible model for the dark photon is. The dark photon is a structure that spins very fast. This means it binds energy. When the universe expands, those photons deliver energy. 



"Diagram of the Meissner effect. Magnetic field lines, represented as arrows, are excluded from a superconductor when it is below its critical temperature." (Wikipedia, Meissner effect)

Could the WIMP (Weakly Interacting Massive Particle) be the quasiparticle that forms when extremely fast-spinning photons come to the regular universe?

Maybe. Those ultra-fast-spinning particles can form in cosmic voids. When. Those particles travel into the “regular” universe. They must deliver their energy. So that means the energy that those particles send. It can form part of dark energy.

When those. Ultra-fast-spinning photons arrive from cosmic voids to the regular universe. They deliver their energy. That forms the quantum bubble. Energy escapes very fast from those photons. And that can decrease their energy level. To a lower level. Than in the regular universe. This bubble is the quasiparticle that could explain why dark matter is not found. The expansion of the universe decreases the energy level in the universe. 

But. It decreases that photon’s mass. And the dark photon’s energy level is always, let’s say, two degrees below absolute zero. That temperature is just an example. The idea is that the temperature difference between those hypothetical dark photons and the space is always the same. 

The temperature of the dark photon. It must not be. The same as zero kelvin. It must only be lower than its environment. This means. That. The particle’s temperature must be below three Kelvin. Cosmic background. Or three Kelvin radiation. Means that. The particle. That is, colder than three K will be invisible. 


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A dark photon. It can turn. The gravitational field opposite. The idea is that. Gravitational waves are like ditches. That move on the layer. The layer is the background. There is a possibility. Gravitational waves’ bottoms turn into a higher energy level than their environment. This turns gravity opposite. So can gravity turn opposite outside the universe? 


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Dark photons are also interesting. Because. They could make anti-gravitation possible. A gravitational wave is like a ditch that travels through the universe. The expansion of the universe makes a geometrical form of that ditch that causes objects to fall backward. Or it falls objects into the gravitational centers. The gravitational wave is a ditch that travels on the quantum layer.

The thing. That could. Turn those energy ditches into energy hills that push objects away is to decrease the energy level. In the environment to such a low level. That it decreases the level. Below the bottom of those energy ditches. So this hypothetical thing.

Happens decreasing. The energy level of the background. So low. That the bottom of gravitational waves is higher than their background. And if dark photons exist. Or reseachers can create them. That makes it possible. To create conditions. That turn gravitational waves opposite. Another interesting detail is this. 

If. Those low-energy photons can be created on a very large scale. This can cause energy flow to the surface. And if that happens from below. That effect pushes the object upward. This effect is known as the Meissner effect. The thing. That makes superconducting objects levitate. Meissner effect means the magnetic effect. And. Airflow combination. 

That keeps the object levitating. But if low-energy photons cause that effect. The reflection from the object is minimal. Those photons can bind energy and wave movement. And if we can make the photon's energy level lower than the local energy minimum. That means those photons can bind wave movement. This makes the surface invisible. 

https://www.universetoday.com/articles/new-study-expands-search-for-dark-photons-a-leading-dark-matter-candidate

https://en.wikipedia.org/wiki/Dark_energy


https://en.wikipedia.org/wiki/Dark_matter


https://en.wikipedia.org/wiki/Dark_photon


https://en.wikipedia.org/wiki/Meissner_effect


https://en.wikipedia.org/wiki/Quasiparticle


https://en.wikipedia.org/wiki/Weakly_interacting_massive_particle


CERN didn’t find evidence of quantum-sized black holes.

“The LHC has ruled out another hiding place for microscopic black holes while unveiling a new way to hunt for physics beyond the Standard Mo...