"Scientists have taken a significant step toward building a future quantum internet by successfully teleporting the quantum state of a photon between two separate quantum dots. Credit: Stock" (ScitechDaily, Quantum Teleportation Breakthrough Brings the Quantum Internet Closer)
In a quantum internet, information travels in nanotubes. The system pulls quantum entanglement through the nanotubes. The quantum internet, which utilizes quantum teleportation for information transport, will offer new and ultra-secure data transmission. This means that eavesdroppers will not be able to see the signal or information. That travels between superpositioned and entangled photon pairs. The quantum network transmits data in a way. That looks like a vector exam.
The superpositioned and antangled particle pairs act in series. Each of the particles is a quantum point, and data travels between them. Step by step. There is one problem. The transmitter side in the quantum entanglement. It must be at a higher energy level than the receiving part. So, this means that when the particle receives information, its energy level must be higher than that of the receiving particle. There are two ways to handle that problem. The first transmitting particle’s energy level must be very high.
Above. Math vector in a 3D model. The quantum internet. It uses. This model. For data transportation. The system must handle the horizontal position of the photons. Those are the locations of the turning points of the information flow. The vertical points are energy levels of the photons. And the topological model of the quantum internet. It looks. Like a series of 3D vectors. Actually, the system is more complicated. It must control things like oscillation frequencies and the size of the objects.
"A common quantum optics process may secretly contain an immense topological structure. By revealing this hidden complexity, researchers show how ordinary entangled photons could enable powerful new ways to encode and stabilize quantum information. Credit: Shutterstock" (ScitechDaily, Scientists Discover Hidden Topological Universe Inside Entangled Light)
"Examples of quantum topologies, shown as vectorial textures on a sphere. Credit: Wits University." (ScitechDaily, Scientists Discover Hidden Topological Universe Inside Entangled Light)
In the upper image. Wave movement. Slide above photons. That topological structure is the photon's contact layer that touches the quantum entanglement. If the contact layer. It is not tight enough, which causes information loss in the system. The quantum entanglement. It transports information like a string in analogical systems. In a quantum system. That string transfers wave movement from higher-energy photons to lower-energy photons.
But there are always limits. When information travels in a series of superpositioned and entangled particles, the difference between energy levels turns zero. And that means information will not travel. Another way is easier. When a particle receives information, the system raises its energy level. The problem is how the system makes information. To keep its form. The solution could be that the receiving particle drives information into mass memory. And then the system raises its energy level. Then the mass memory loads information into that particle.
But the fact is that: Theoretically, this kind of system is very easy to make. Practical solutions are not so easy. The practical solution in the quantum internet requires an ability to control photons and information flow precisely. This requires lots of data, because the system must have. All knowledge of the quantum system and its environmental interactions. So that it can control it with necessary accuracy. Information that travels in the quantum network must be protected from outside effects.
This means that information channels must be. In a Faraday cage that protects it from outside magnetic fields. New materials like “iron graphene” can make it possible to create the nanotubes that act like a Faraday cage. The magnetic version of graphene can glue iron atoms onto it. The magnetic graphene can also be used to create systems that drive information in the photons. The “magnetic graphene” can be used to trap electrons in it. Then the system uses those electrons to transmit data to photon pairs that are trapped between those material layers.
https://scitechdaily.com/quantum-teleportation-breakthrough-brings-the-quantum-internet-closer/
https://scitechdaily.com/scientists-discover-hidden-topological-universe-inside-entangled-light/
https://scitechdaily.com/scientists-discover-hidden-topological-universe-inside-entangled-light/






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