CNO fusion using particle accelerator?

In summary, the CNO cycle is a fusion reaction that occurs in stars larger than the sun and produces energy through the conversion of four protons into a helium-4 nucleus. It uses carbon, nitrogen, and oxygen isotopes as catalysts and releases 26.7 MeV of energy, mostly in the form of gamma rays. It is possible to replicate this cycle in a laboratory setting by bombarding a high-density target made of these isotopes with accelerated protons. However, the amount of fusion energy produced is far less than the energy needed to accelerate the protons, making this method inefficient. Attempts to use particle accelerators to produce fusion have not been successful due to the majority of incoming nuclei losing their energy through Coulomb scattering
  • #1
jcap
170
12
The CNO cycle (see https://en.wikipedia.org/wiki/CNO_cycle) is a catalytic fusion reaction that produces energy in stars larger than the sun. It converts four protons into a helium-4 nucleus using a cycle of carbon, nitrogen and oxygen isotopes as catalysts and releases 26.7 MeV of energy mostly in the form of gamma rays.

Could one make this cycle work in the laboratory by bombarding a high-density target made of these isotopes with protons accelerated in a particle accelerator?

If a carbon nucleus has a radius of about ##2.7\times10^{-15}## m then one would require protons to be accelerated to about ##3.2## MeV in order to overcome the Coulomb repulsion. I guess this can easily be achieved. If the energy of the gamma rays was captured perhaps one could produce fusion energy by this method?
 
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  • #2
Many people have thought about trying to produce fusion with particle accelerators. Suppose I fire high-energy nuclei at a target (say I fire deuterium nuclei at a deuterium target). A very few of the nuclei will hit a target nucleus "head-on", overcome the Coulomb barrier, and fuse. The vast majority of the incoming nuclei, however, will lose their energy through Coulomb scattering off the nuclei and electrons in the target. The amount of fusion energy produced in this way is far less than the energy needed to accelerate the incoming nuclei. It just doesn't work.
 
  • #3
Could one insert the target into the accelerator ring so that any beam particles that don't collide with target nuclei are collected and sent round the accelerator again until they do collide?
 
  • #4
They still collide, they just don't collide with a nucleus head on. They collide with a nucleus with a non-zero impact parameter and are deflected or they collide with electrons and lose energy.
 

1. What is CNO fusion using particle accelerator?

CNO fusion using particle accelerator is a process where carbon, nitrogen, and oxygen atoms are fused together to form heavier elements, releasing energy in the process. This is done using a particle accelerator, which speeds up particles to high energies and collides them to initiate the fusion reaction.

2. How does CNO fusion using particle accelerator work?

In CNO fusion, the carbon, nitrogen, and oxygen atoms are bombarded with high-energy particles, such as protons or alpha particles, which causes them to fuse together. This fusion process releases energy in the form of gamma rays and neutrinos.

3. What is the purpose of CNO fusion using particle accelerator?

The main purpose of CNO fusion using particle accelerator is to study and understand the nuclear reactions that take place in the cores of stars. This can help scientists better understand the formation and evolution of stars, as well as the origin of elements in the universe.

4. What are the potential applications of CNO fusion using particle accelerator?

While CNO fusion using particle accelerator is primarily used for scientific research, it also has potential applications in energy production. If scientists can find a way to control and harness the energy released from CNO fusion, it could potentially provide a clean and sustainable source of energy for the future.

5. What are the challenges of CNO fusion using particle accelerator?

The main challenge of CNO fusion using particle accelerator is the high amount of energy required to initiate and sustain the fusion reactions. It also requires advanced technology and precise control to successfully collide the particles and maintain the fusion process. Additionally, the radiation produced during the fusion reaction can be hazardous and needs to be carefully managed.

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