Physics · Ch 13 — Nuclei
Points to Ponder
Points to Ponder
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The density of nuclear matter is roughly constant across all nuclei — it does not depend on the mass number . In contrast, the mass density of the whole atom (including the electron cloud) varies with atomic size, so it does not share this constancy.
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The nuclear radius measured by electron scattering differs slightly from that measured by alpha-particle scattering. Electrons probe the charge distribution of the nucleus, while alpha particles (and similar projectiles) interact with the nuclear matter itself, so they sense a slightly different boundary.
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After Einstein’s mass-energy equivalence , mass and energy are no longer conserved separately. Instead, we have a single law: conservation of mass–energy. Nuclear physics provides the strongest evidence for this principle, and it is essential for understanding nuclear energy. The -value of a nuclear process (decay or reaction) can therefore be written in terms of the initial and final masses.
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The binding energy per nucleon curve shows that energy can be released (exothermic reactions) in two ways: when two very light nuclei fuse together, or when a very heavy nucleus splits (fission) into nuclei of intermediate mass.
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For fusion to occur, the light nuclei must have enough initial kinetic energy to overcome the Coulomb repulsion barrier between them. This is why fusion requires extremely high temperatures.
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Although the binding energy per nucleon curve is generally smooth and slowly varying, it shows distinct peaks at nuclides like , , etc. These peaks are taken as evidence of a shell-like structure inside the nucleus, analogous to atomic electron shells.
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An electron and a positron form a particle–antiparticle pair. They have identical mass, and their charges are equal in magnitude but opposite in sign. When an electron and a positron meet, they annihilate each other, converting their entire mass into energy in the form of gamma-ray photons. …