Wednesday, September 30, 2026

Gravitational lensing can uncover dark matter.



“Artist’s impression illustrating how wave-like density patterns produced by ultralight dark matter could warp space and alter the path of light from a distant source. As the light travels past the lensing object on its way to Earth, it follows a distorted path shaped by the surrounding mass distribution. The reflective sphere symbolizes the still-unknown nature of dark matter. The image was created using 3D computer graphics software. Credit: Amruth Alfred.” (ScitechDaily, Dark Matter May Behave Like Waves and a Distant Quasar Could Prove It)

Distant quasars can prove that dark matter acts like waves. And if the mythical WIMP is a quantum-sized black hole. That explains gravitational waves. This means that the graviton is a WIMP. That missing graviton boson is just the traveling quantum-sized black hole. This means that. When. Those quantum-sized black holes travel through the universe. They bind energy from around them. And that can explain why gravity is so special. 

Dark matter can bend light. And that can make it possible to see the WIMP. Dark matter is a mystery. It is a gravitational effect with an invisible source. Some galaxies seem to have less dark matter than others. That tells us dark matter can be denser in some areas. And less dense. In some other areas. How dense could those dark matter nebulas be? Nobody knows. Could dark matter form black holes in a very dense energy field? It should. 

Have the ability. To form a black hole. If. Dark matter particles interact through gravity. They should. Have the ability. To form black holes. The black hole doesn’t just pull matter inside it. Its energy also pushes particles away.  So if WIMPs (Weakly Interacting Massive Particles) are quantum-sized black holes. Their halos could have a stronger push effect. Compared. With the event horizon size. than so-called “regular” black holes do. 

The only fact that reseachers know about that strange phenomenon is this. Dark matter. Has gravitational interaction with visible matter. There are. Many things that dark matter could be. In some visions, dark matter is a particle. 

Inside some other particle. And if the particle spins very fast. That spin forms the quantum vacuum around the particle. 

When quantum fields from around the particle try to fill that point. That. Increases the pull of the particle’s gravitational field. When wave movement travels through that microvacuum. That microvacuum stretches it. Its wave movement becomes longer. 


Another version of that model is that Dark matter could be quantum-sized black holes. 


There is also a model. That dark matter is the cosmic minivacuums. Those microvacuums form when very high-energy particles travel outside the galaxy. When. Those particles travel out from the galactic halo. 

They suddenly go into a very low-energy space. This makes them release energy very fast. That forms a cosmic microvacuum. This acts like a particle. 

If. Particles like photons or electrons form outside the galaxy supercluster. They travel faster than they can travel in the supercluster. They release their energy into the plasma. That connects galaxies in the supercluster. And that forms the radiation. 


In some other models, dark energy and dark matter are connected to the universe’s expansion.


There could be a denser plasma wave at the outer border of the universe. That plasma formed when the Big Bang sent an energy wave into the universe. When. That energy wave traveled through space. There formed whirls in that energy. Those whirls turned into the first electrons and later quarks. 

Today, the expansion of the universe forms similar but lower-energy whirls behind that borderline of the universe. There. Could be cosmic microvacuums just inside the plasma wave. And when particles go into that microvacuum, they evaporate. 

If. We think that most of the matter in the universe is at the outer border of the universe. So. The border of the universe is heavier than the internal areas. If. Most galaxies are in that border. 

That means the border sends energy into the universe’s internal areas. There, that energy reflects. And pushes the outer border outward. If the outer border of the universe. Particles also escape from the universe. In that case, those particles also evaporate. They send radiation. And subparticles back to the universe. Those particles impact the universe’s borderline. And they travel faster. Than. They should. 

When those particles impact the universe. They. Must release their kinetic energy. This forms Cherenkov radiation in the universe. That radiation forms when quarks or some other particles hit the border of the universe. The same thing happens inside the plasma wave. But. When a particle evaporates inside that plasma wave. All energy and subparticles can escape from the universe only through that plasma border. 


https://scitechdaily.com/dark-matter-may-behave-like-waves-and-a-distant-quasar-could-prove-it/

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Gravitational lensing can uncover dark matter.

“Artist’s impression illustrating how wave-like density patterns produced by ultralight dark matter could warp space and alter the path of l...