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Question

A nucleus X220 at rest decays by emitting an α particle. If energy of the daughter nucleus is 0.2 MeV, then the Q value of the reaction is

A
10.8 MeV
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B
10.9 MeV
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C
11 MeV
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D
11.1 MeV
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Solution

The correct option is C 11 MeV
The given decay is represented as

X220Y216+α

As the X220 is initially at rest,

According to conservation of momentum,

0=PY+Pα

|PY|=|Pα|

We know that, K.E=P22m

K.EYK.Eα=mαmY

The mass of the nucleus is proportional to the mass number (A).

K.EYK.Eα=4216=154

K.Eα=54(K.EY)

Given that, K.EY=0.2 MeV

K.Eα=10.8 MeV

Q=K.Eα+K.EY

Q=11 MeV

Hence, option (C) is correct.
Alternate solution :

X220Y216+α

KEY=mαmXQ=0.2

4u220uQ=0.2

Q=11 MeV

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