Showing posts with label molecular qubits. Show all posts
Showing posts with label molecular qubits. Show all posts

Sunday, November 27, 2022

Researchers extend the lifetime of the qubit.

Image 1: Molecular qubit

Researchers extended the lifetime of the molecular qubits. Many things are making molecular qubits interesting tools in quantum computing. 

Researchers can create molecular qubits by putting some atoms (like krypton, helium, gold, etc.) in the fullerene molecule. Then they are driving information to that atom.

Then that atom sends the information to the fullerene core. And after that, the fullerene core will transmit the data to the multiple receiving sensors. If that system uses a C60 molecule. That allows the creation of a qubit that has 60 channels. 


Image 2: C60 Fullerene

Also, receivers have numbers. The system uses numbered data segments. So the data line will delete all other segments than the segment whose number matches the number of the data line. So when data arrives at line 5 the receiver destroys all other data segments than segment number 5. And that allows putting the data row into pieces. Then the system turns the data row into a line. 

The thing that makes qubit so important is that it is required in the process. That transforms the data row into the data line. Diagram 1. There is a possibility to create qubits with four states by using electric wires when the temperature is as low as possible. But the molecule-based qubits are more useful in biological microprocessors. 






Diagram 1: Qubit's principle. 


A =Data row 1

B= The level that transforms data from row to linear form. 

C= Datarow 2. Where the system returns linear data in a row. 

The biological qubits can also transfer data to neurons or microprocessors. Genetic engineering allows researchers can create bacteria or viruses that can operate as a qubit. 

Researchers are the first time manipulated data inside the DNA. And that allows the creation of artificial bacteria which can transfer information to neurons or microprocessors. The idea is that the DNA transfer will make bacteria able to send electric impulses. Then the data that is stored in the DNA will transfer to the receivers which can be axons of living neurons. Or they can be microprocessors. 

Image 3: AIDS-virus

Or the virus itself turns into a molecular qubit. If we are looking at the AIDS virus nothing denies that it could work as a qubit. The system requires a genome where data is loaded. Then the qubit virus will send electric signals to receivers that can be the living neuron. Or they can be microprocessors. 

Human brain neurotransmitters are molecular qubits. And molecular qubits can use for transmitting data between living neurons and non-organic microprocessors. There is a possibility that some viruses can transform into molecular qubits. DNA could be excellent data storage. And the outer core of the virus can send electric impulses to the receivers. 

The problem is how to make the internal data of the DNA transform electric signals. The answer can be simple. The retrovirus will infect the bacteria. And then that transforms the cell into a memory neuron. Or the DNA can turn the bacteria to be able to give electric shocks. Then the DNA would transfer its data by using those electric shocks as the transmitter. 


https://scitechdaily.com/quantum-breakthrough-scientists-extend-qubit-lifetimes/


https://scitechdaily.com/scientists-have-found-a-way-to-manipulate-digital-data-stored-in-dna/


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


Image: 

Image 1: https://scitechdaily.com/quantum-breakthrough-scientists-extend-qubit-lifetimes/

Image 2: https://en.wikipedia.org/wiki/Fullerene

Image 3: https://medizin.plus/krankheiten/hiv


https://designandinnovationtales.blogspot.com/


Tuesday, November 5, 2019

Problems of a quantum computer, and how they might be solved someday.





Problems of a quantum computer, and how they might be solved someday.

The attempt to create ultrafast microprocessors is really difficult, and sometimes people, like me have suggested that the temperature of the processor would decrease in the superconducting temperature. The problem is the silicon would transform as well superconducting, and the electricity will jump out from wire. Also, superconducting components like switches would not stop electricity, and that's why they cannot control the route of electricity because electrons pass those parts.

When we are thinking about the thing like a quantum computer, we would have problems to make qubits, what have more than two possible values. Sometimes I have thought that ionized water or Crypton based molecule would allow creating qubit, and when one side of this ionized molecule touches the gate, the value would be zero, when the two parts of the molecule touch the gate would the system get value one, and when all three parts are touching the gate, would the value be two.

This technology would be called as the "physical qubit", where ionized molecule would act as the qubit, what is the replacer of the bit in the quantum computer. But the difference between the quantum computer and normal computer is that quantum computers would handle the minimum type of information, and the information what it handles is the numbers. When there is needed the number breaking capacity, where is needed to calculate the extremely long prime numbers or quantum prime numbers, the quantum computer would be an extremely good tool.

How about virtual qubits?

In this text is the picture of the map of the railway station, and the thing is that the wires can be thought of as the railroads, where the data goes. In this model, the data, that will travel to the nucleus of the processor is filtered. Everything else, except the numeric values, what are the strongest field of the computer would be removed from the input syntaxes, what will send to the nucleus of the processor, what will handle the minimum type of data, but what will make it extremely effective way.

Those wires what will travel to the nucleus of the quantum processor would form the thing, what we can call as the virtual qubit. The four wires would bring the electrons, and the pairs of those wires would send the data to the upper levels of the system. When one wire would bring electron, the value would be zero, when two wires would bring electron, the value is one when three wires would bring electron, would the value be two. And when the four wires would bring electron to quantum level the value would be three.

So the value of the linear qubit would be (n-1).  When we are thinking about the output, each wire, what is taking the data away from the quantum processor can be connected to the own conventional processor. And that kind of thing would revolutionize the handling of data.

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