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Q.Assertion (A): During the formation of a nucleus, the mass defect produced is the source of the binding energy of the nucleus. Reason (R): For all nuclei, the value of binding energy per nucleon increases with mass number. (A) Both A and R are true and R is the correct explanation of A. (B) Both A and R are true, but R is not the correct explanation of A. (C) A is true, but R is false. (D) Both A and R are false.

CBSECBSE Class XII Board 2025MCQ· 1mImportance★★★★★
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The mass defect does provide the binding energy (A is true), but binding energy per nucleon does not increase monotonically with mass number—it peaks around iron-56 and then decreases (R is false). The answer is (C).

Understanding Mass Defect and Binding Energy

When protons and neutrons come together to form a nucleus, something remarkable happens: the mass of the resulting nucleus is less than the sum of the masses of its constituent nucleons. This "missing" mass hasn't vanished—it has been converted into energy that holds the nucleus together.

Einstein's mass-energy equivalence E=mc2E = mc^2 tells us that mass and energy are interchangeable. The mass defect Δm\Delta m is precisely the source of the binding energy:

BE=Δm⋅c2BE = \Delta m \cdot c^2

This binding energy is what you would need to supply to completely disassemble the nucleus back into separate protons and neutrons. The assertion (A) captures this fundamental principle correctly.

The Binding Energy Per Nucleon Curve

Now let's examine the reason (R), which claims that binding energy per nucleon increases with mass number for all nuclei. This is where we need to look at experimental data.

The binding energy per nucleon, BEA\frac{BE}{A} (where AA is the mass number), does not increase monotonically. Instead, it follows a characteristic curve:

  1. Light nuclei (hydrogen, helium): relatively low binding energy per nucleon, around 1–7 MeV.

  2. Medium nuclei (iron-56, nickel-62): the curve reaches its maximum at approximately 8.8 MeV per nucleon. Iron-56 sits near the peak of nuclear stability.

  3. Heavy nuclei (uranium, plutonium): the binding energy per nucleon decreases to around 7.5 MeV.

Important

The binding energy per nucleon curve peaks around A≈56A \approx 56 (iron) and then decreases for heavier elements. This is why both fusion (combining light nuclei) and fission (splitting heavy nuclei) release energy—both processes move toward the more stable middle region.

RegionMass Number RangeBE/nucleonTrend
LightA<20A < 201–7 MeVIncreasing
Medium20<A<10020 < A < 1007.5–8.8 MeVPeak around Fe-56
HeavyA>100A > 1007.5–8 MeVDecreasing

The decrease in binding energy per nucleon for heavy nuclei occurs because: …

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