Q.What is binding energy per nucleon? Explain with the help of diagram how binding energy per nucleon affects nuclear stability?
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Start your 14-day free trial to unlock the full solution →Step 1. Total binding energy B.E. is the energy needed to break a nucleus into its separate protons and neutrons; dividing by the total number of nucleons A gives the binding energy PER NUCLEON, -- a fairer, size-independent measure of how tightly bound (and hence how stable) a nucleus is.
Step 2. Plotting against mass number A gives a curve that: shows sharp local peaks for very light nuclides at A values that are multiples of 4 (e.g. He-4, C-12, O-16); climbs through medium-mass nuclides; reaches an overall maximum of about 8.79 MeV/nucleon at iron-56, the single most stable (most tightly bound per nucleon) nuclide known; then falls steadily for heavier nuclides, down to about 7.7 MeV/nucleon near bismuth-209, the heaviest stable nuclide.
Step 3. Because the curve peaks near iron, a HEAVY nucleus splitting (fission) into two medium-mass fragments moves those fragments UP the right-hand slope toward the peak -- into a more tightly bound state -- releasing the difference in binding energy. …
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