Q. and nuclei have the same mass number. Do they have the same binding energy?
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Start your 14-day free trial to unlock the full solution →Binding energy depends on both mass number and proton number (Z). Even though and have the same mass number , their different proton counts lead to different Coulomb repulsion and different nuclear compositions, so their binding energies are not the same.
Why binding energy varies with Z
Binding energy is the energy required to break a nucleus into its individual protons and neutrons. It comes from the strong nuclear force holding nucleons together, but this force is affected by two key factors:
- Number of nucleons () — more nucleons generally mean more binding, but the relationship isn't linear.
- Proton count () — protons repel each other electrically, so extra protons reduce the net binding.
The semi-empirical mass formula (Bethe-Weizsäcker formula) captures this:
The key term here is the Coulomb term (). For fixed , a larger means more electrostatic repulsion, which reduces the binding energy.
Step-by-step comparison
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Identify the nuclei
has , (one neutron, two protons).
(tritium) has , (two neutrons, one proton).
Both have .
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Apply the Coulomb term
For : , so . The Coulomb term is .
For : , so . The Coulomb term is zero.
This alone tells us has less binding energy due to proton-proton repulsion.
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Consider the asymmetry term
The term penalizes imbalance between protons and neutrons.
For : , so .
For : , also .
So the asymmetry term is identical for both — no difference here.
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Check the pairing term
The pairing term accounts for whether and are even or odd.
: (even), (odd) → an even-, odd- configuration, which gives a small positive (extra binding).
: (odd), (even) → odd-even, also a small positive . …
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