Skip to main content

Use of viruses and blood cells to make electricity to nanomachines

 


 

Use of viruses and blood cells to make electricity to nanomachines


The benefiting viruses as the power source of the extremely small nanomachines are the new idea to make the nanomachines more independent and effective what the have been. The virus can be beneficial simply as the layer, where the two types of atoms like lead and iron or lead and gold are sprayer, and that kind of small structure can act as the battery in the extremely small machines. 


The simplest way is to use two different viruses, what DNA would be destroyed, and then those killed viruses can connect to the miniaturized electric wire, which would transfer the electricity to the miniaturized machines. The idea is the same, what is used in the normal battery. But the size is very small. 


In some other versions, the blood cells where is the bite of gold between them, and that makes those things the small-size volta-statues. The thing that gives those things very interesting is that those materials are not poisonous, and that makes this kind of system suitable to use in the miniature submarines, which can travel in the human blood veins.


The hemoglobin is acting like iron in this structure. And the insulator, what is needed in this structure can be made by using the bone or sinew cells, which is isolating the layers of gold and iron from each other. 


But another way to make the small batteries for nanomachines is to create the golden stick, which can be put inside the virus. And then the iron layer would just make to cover the outer layer of the virus. This kind of system is a really interesting and effective way to make the electricity to the nanomachines. 


That kind of nano battery can also inject into the cell, where it can be used to give electricity to the nano-size microchips, which are controlling the movements and other actions of the single cells. In real life, the fullerene ball can be used as the trunk in that kind of small electric production unit. 


The idea is that the fullerene is put in the liquid, where it is copper or gold ions. And in some other vessel would put the liquid, where are the ions of some other metal. The only thing that the creators of that kind of system must remember is that the metal, what is used in one vessel must be more ignoble than others, and then the electric wires can be connected to those balls. 


The electric wires can be the line of the atoms, and this structure can be covered by some material, which would be acting as an insulator. Then that kind of system can be used to control the biorobots, what is one of the most fascinating tools, what nanotechnology has ever created. If one single cell as an example macrophages can be controlled in the human body, that thing can revolutionize medicine and many other things. 


Image: https://foresight.org/Nanomedicine/Gallery/Images/down1.JPG

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