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Nuclear Fission

The energy re...

Question

The energy released per fission of a ${_{92} U}^{235}$ nucleus is nearly

200 e V

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20 e V

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200 M e V

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2000 e V

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Solution

The correct option is C $200 M e V$
The fission process represented by the equation, $_{92} U^{235} +_{0} n^{1} \to_{56} B a^{144} +_{36} K r^{89} + 3_{0} n^{1}$
Masses of reactants $= 234.39 + 1.01 = 235.4 a m u$
Masses of products $= 143.28 + 88.89 + 3 (1.01) = 235.2 a m u$
Energy released $=$ mass difference $= 235.4 - 235.2 = 0.2 a m u = 0.2 \times 931 \sim 200 M e V$

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