Skip to main content

The magnetic vortex rings can use to make the virtual magnetic accelerators.

 

.
.

The magnetic vortex rings can use to make the virtual magnetic accelerators.

If someday the magnetic vortex rings can form in the ionized gas that vortex can be used in many things. The magnetic vortex rings, which are formed in ionized liquid or gas can be useful in nanotechnology. The magnetic vortex rings can collect iron or some other parts, which are affecting by the magnetic field to a certain form. So that thing allows putting the atom-sized particles in the right point.

The magnetic vortex rings are very interesting things, which can be useful for many purposes. Those magnetic rings are forming in the magnetic micropillar, which is made by using cobalt. But if the magnetic vortex rings can probably use in the virtualization of the structures. In this case, the magnetic rings are creating inside the ion pillar, which makes it possible to create a new type of magnetic accelerator, which is very thick but also effective.

If those magnetic rings can form inside the CERN's Hadron accelerator, that thing could get greater accuracy than ever before. But what if we could create those magnetic rings in the ionized gas that is at some chamber, or maybe benefit the natural plasma of the space?

The virtual magnetic accelerator can use to put the ionized molecules in the right places. The magnetic ring can hover above the layer, and the system can shoot the ions to the targeted point of the layer, which allows making new and smaller nanotechnical structures like microprocessors.

In that case, the row of those magnetic rings are put in the ion structure, and the ions can make the magnetic accelerator, which is the series of those magnetic rings. If researchers can someday create those magnetic rings in the natural plasma that would open new roads for nanotechnology and particle research.

But that thing requires a little bit more research than some model. Theoretically, there are no limits to the structure that is created by using the ring-shaped magnetic field. And that thing makes those systems very interesting, as I wrote at the beginning.

https://scitechdaily.com/hidden-beauty-first-experimental-observation-of-three-dimensional-magnetic-vortex-rings/

https://www.researchgate.net/figure/Magnified-snaphots-of-vortex-structures-a-Without-magnetic-field-00-T-b-With_fig7_324695710

Image: https://www.researchgate.net/figure/Magnified-snaphots-of-vortex-structures-a-Without-magnetic-field-00-T-b-With_fig7_324695710


https://curiosityanddarkmatter.home.blog/2020/12/04/the-magnetic-vortex-rings-can-use-to-make-the-virtual-magnetic-accelerators/

Comments

Popular posts from this blog

Plasmonic waves can make new waves in quantum technology.

"LSU researchers have made a significant discovery related to the fundamental properties and behavior of plasmonic waves, which can lead ot the development of more sensitive and robust quantum technologies. Credit: LSU" (ScitechDaily, Plasmonics Breakthrough Unleashes New Era of Quantum Technologies) Plasmonic waves in the quantum gas are the next-generation tools. The plasmonic wave is quite similar to radio waves. Or, rather say it, a combination of acoustic waves and electromagnetic waves. Quantum gas is an atom group. In those atom groups, temperature and pressure are extremely low.  The distance of atoms is long. And when an electromagnetic system can pump energy to those atoms. But the thing in quantum gas is that the atoms also make physical movements like soundwaves. It's possible. To create quantum gas using monoatomic ions like ionized noble gas. In those systems, positive (or negative) atoms push each other away.  When the box is filled with quantum gas and som

The breakthrough in solid-state qubits.

Hybrid integration of a designer nanodiamond with photonic circuits via ring resonators. Credit Steven Burrows/Sun Group (ScitechDaily, Solid-State Qubits: Artificial Atoms Unlock Quantum Computing Breakthrough) ****************************************** The next part is from ScitechDaily.com "JILA breakthrough in integrating artificial atoms with photonic circuits advances quantum computing efficiency and scalability". (ScitechDaily, Solid-State Qubits: Artificial Atoms Unlock Quantum Computing Breakthrough) "In quantum information science, many particles can act as “bits,” from individual atoms to photons. At JILA, researchers utilize these bits as “qubits,” storing and processing quantum 1s or 0s through a unique system". (ScitechDaily, Solid-State Qubits: Artificial Atoms Unlock Quantum Computing Breakthrough) "While many JILA Fellows focus on qubits found in nature, such as atoms and ions, JILA Associate Fellow and University of Colorado Boulder Assistant

Metamaterials can change their properties in an electric- or electro-optical field.

"Researchers have created a novel metamaterial that can dynamically tune its shape and properties in real-time, offering unprecedented adaptability for applications in robotics and smart materials. This development bridges the gap between current materials and the adaptability seen in nature, paving the way for the future of adaptive technologies. Credit: UNIST" (ScitechDaily, Metamaterial Magic: Scientists Develop New Material That Can Dynamically Tune Its Shape and Mechanical Properties in Real-Time) Metamaterials can change their properties in an electric- or electro-optical field.  An electro-optical activator can also be an IR state, which means. The metamorphosis in the material can thermally activate.  AI is the ultimate tool for metamaterial research. Metamaterials are nanotechnical- or quantum technical tools that can change their properties, like reflection or state from solid to liquid when the electric or optical effect hits that material. The metamaterial can cru