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perjantai 27. kesäkuuta 2025

Mathematics, geometry, and quantum.


In the image in this text is an image of lupine and image of a quantum experiment there is tested Landrauer's principle. “Landauer's principle is a physical principle pertaining to a lower theoretical limit of energy consumption of computation. It holds that an irreversible change in information stored in a computer, such as merging two computational paths, dissipates a minimum amount of heat to its surroundings. It is hypothesized that energy consumption below this lower bound would require the development of reversible computing. The principle was first proposed by Rolf Landauer in 1961.” (Wikipedia, Landauer's principle)

Both the flower and those quantum fields form the tower. And the remarkable thing is that those quantum fields form a similar structure as a series of coils that send radiation from their sides. That kind of quantum tower can send information to the receiving coils or layers if they are against each other. Same way a radio antenna transmits information from the points where the Hall effect forms the plate-shaped expansion into the electromagnetic (quantum) field between atoms. 



"Quantum magnetometers are breaking barriers in magnetic sensing — but are they really quantum? A new study digs into how far these devices can go and what defines their quantum nature. Credit: SciTechDaily.com"(ScitechDaily, Quantum Sensors That Hear Magnetic Whispers – And Push Physics to Its Limit). Those sensors could form a tower that can scan quite a large area. 

Quantum magnetometers can detect incredibly small changes in magnetic fields by tapping into the strange and powerful features of quantum physics. These devices rely on the discrete nature and coherence of quantum particles—behaviors that give them a major edge over classical sensors. But how far can their sensitivity go? And what actually makes a magnetometer “quantum?” (ScitechDaily, Quantum Sensors That Hear Magnetic Whispers – And Push Physics to Its Limit)

Those fields form when an electromagnetic wave travels between atoms.  When that wave hits an atom's quantum field it causes a wave. That wave or resistance makes it possible that the system can press information into the sides of the antenna.  When we think about those Hall fields and those flowers, we can imagine a situation where those flowers could send chemical signals from their flowers to another flower. That thing is not proven. But the lupine flowers can act as models for directed radio transmitters that send coherent radio signals to the receiver. 

The second image introduces the model of the quantum fields around quantum sensors. Those quantum fields allow those sensors to sense things that were unable to detect before. When we think about things like quantum computers, erasing information is also important. If we can trap wave movement into the bubble, we can erase that information by pressing wave movement into a straight position. 

We can see that the same forms repeat in nature. The image from the Landrauer’s principle has a similar form with flowering plants. And that causes an interesting question. Can we someday calculate things like quantum fields' form in situations where some high-power energy impulse hits them. If we think that the quantum tower is similar in all sizes of quantum systems, we can make the new types of quantum systems that are more sensitive than ever before.  

There is a possibility that the quantum sensor looks like the quantum tower where the electrons or photons hover between objects and those quantum fields. When we make superposition and entanglement we must know everything from the system. We must predict things like FRBs and other changes in the power of electromagnetic fields. 


https://phys.org/news/2025-06-approach-probing-landauer-principle-quantum.html


https://scitechdaily.com/quantum-sensors-that-hear-magnetic-whispers-and-push-physics-to-its-limit/


https://scitechdaily.com/the-quantum-price-of-forgetting-scientists-finally-measure-the-energy-cost-of-deleting-information/


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





perjantai 27. joulukuuta 2024

Researchers manipulated atoms and molecules with light. And that makes the new chemistry possible.


"Using light, researchers have guided molecules to self-assemble in ways nature wouldn’t allow, unlocking new realms of nanotechnology. This method could inspire futuristic solutions in medicine and dynamic devices. Credit: SciTechDaily.com" (ScitechDaily, Scientists Just Made Molecules Do the Impossible With Light)

The new spectrometers and other systems can observe the purity of raw materials. In the new reaction chambers, those systems can hover between nanomachines. And observe how the system advances the molecule formation. 

The nanodiamonds can act as, or with. The quantum sensor. The sensor is based on the quantum entanglement. And photon scanners can see even the positions of single electrons. The sensor works with the single photons that the system puts to send wave movement. 

Those single-photon scanners are the sharpest sensors that researchers can create. They can used to aim energy impulses into the single electron. This ability means that the system can shoot single electrons out from their orbitals. These kinds of sensors may not be so far in the future. The ultra-fast X- and ultraviolet radiation pulses can used to create the image of the atoms.

If there are channels in the quantum diamonds. Where there are even hydrogen ions (protons) or electrons that can scan the surface with impressive accuracy. In some ideas, the UV system freezes the electron that orbits the proton in hydrogen. Then the system inputs energy into the proton, and the electron acts as a stylus that scans the object. 


"Enhanced nanodiamonds now enable high-sensitivity biological sensing, offering groundbreaking potential for early disease detection and sustainable tech innovation. Credit: SciTechDaily.com" (ScitechDaily, High-Performance Nanodiamonds for Advanced Bioimaging and Quantum Sensing)




"The technique was demonstrated on helium atoms: here the research team was able to manipulate the electronic energy levels, and the motion of electrons was subsequently measured. Credit: Alessia Candeo – Politecnico di Milano" (ScitechDaily, Scientists Control Atoms With Light and It Could Change Chemistry and Physics Forever)


"Fiber photoacoustic spectrometer enables continuous intravascular gas monitoring. Credit: Jun Ma (Jinan University)" (ScitechDaily, Miniaturized Spectroscopy Delivers Real-Time Monitoring in Narrow Spaces)

"Scientists have achieved a groundbreaking milestone in quantum mechanics by manipulating the temporal evolution of a quantum system using extreme ultraviolet (XUV) light pulses" (ScitechDaily, Scientists Control Atoms With Light and It Could Change Chemistry and Physics Forever)

The ability to see particles. And their chemical bonds. Make it possible to create new chemistry. And that new chemistry makes it possible to create fundamental new molecules that revolutionize medical research. In the same way, those new molecular bonds raise nanotechnology to a new level. 

The ability to order the angle. And the point. Where two atoms, or molecules make contact. Is the thing. That changes chemistry forever. 

Light can blow the electron cloud into one side of the atom. Or a very sharp photon beam can shoot one individual electron away from its position. That thing makes it possible. That system can create chemical bonds for noble gases. 

Light or photonics is the new tool. That can make the new very complex chemical compounds possible. 

The new observation tools and fast-reacting energy-pumping systems along with highly sophisticated neural networks make it possible to manipulate atoms and molecules in new ways. The system can make the ultra-high accurate physical and chemical environment and aim the UV or IR and other monotonic radiation types to the objects with very high accuracy. 

The ability to send radiation into the individual electrons is the thing that makes the system more accurate and fundamental than developers ever imagined. The system can adjust the physical environment with UV and IR holograms. And those things can adjust the energy level in the atoms and their parts with ultra-high accuracy. 


https://scitechdaily.com/high-performance-nanodiamonds-for-advanced-bioimaging-and-quantum-sensing/


https://scitechdaily.com/miniaturized-spectroscopy-delivers-real-time-monitoring-in-narrow-spaces/


https://scitechdaily.com/scientists-control-atoms-with-light-and-it-could-change-chemistry-and-physics-forever/


https://scitechdaily.com/scientists-just-made-molecules-do-the-impossible-with-light/

Artificial viruses can help to fight. Against antibiotic resistance.

“A new DNA-based technique lets scientists build and customize bacteriophages entirely from scratch. The advance could accelerate efforts to...