Q.Why is nuclear fusion not possible in the laboratory?
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Start your 14-day free trial to unlock the full solution →The required temperatures are too extreme for any laboratory material to confine, since both nuclei are positively charged and repel strongly.
Nuclear fusion requires two positively-charged nuclei to be brought close enough together (within the range of the strong nuclear force, m) to fuse. Since both nuclei are positively charged, they strongly repel each other electrostatically (Coulomb repulsion), and this repulsive barrier increases sharply as they approach each other. To overcome this barrier, the nuclei need extremely large kinetic energies, corresponding to temperatures of the order of – K (achieved naturally inside stars, where fusion powers their energy output). At such temperatures, matter exists as a plasma, and no ordinary solid material container can withstand or physically confine it (it would instantly vaporise/melt); controlled fusion instead requires exotic confinement methods (magnetic or inertial confinement), which are extremely difficult and remain a major …
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