$_{92}^{238}A \to _{90}^{234}B + _2^4D + Q$ In the given nuclear reaction, the approximate amount of energy released will be: [Given, mass of ${ }_{92}^{238} \mathrm{~A}=238.05079 \times 931.5 ~\mathrm{MeV} / \mathrm{c}^{2},$ mass of ${ }_{90}^{234} B=234 \cdot 04363 \times 931 \cdot 5 ~\mathrm{MeV} / \mathrm{c}^{2},$ mass of $\left.{ }_{2}^{4} D=4 \cdot 00260 \times 931 \cdot 5 ~\mathrm{MeV} / \mathrm{c}^{2}\right]$

Question

$_{92}^{238}A \to _{90}^{234}B + _2^4D + Q$

In the given nuclear reaction, the approximate amount of energy released will be:

[Given, mass of ${ }_{92}^{238} \mathrm{~A}=238.05079 \times 931.5 ~\mathrm{MeV} / \mathrm{c}^{2},$

mass of ${ }_{90}^{234} B=234 \cdot 04363 \times 931 \cdot 5 ~\mathrm{MeV} / \mathrm{c}^{2},$

mass of $\left.{ }_{2}^{4} D=4 \cdot 00260 \times 931 \cdot 5 ~\mathrm{MeV} / \mathrm{c}^{2}\right]$

2.12 MeV

4.25 MeV

3.82 MeV

5.9 MeV

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