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Question

Consider the following nuclear reactions:
23892M xyN+242He
xyN ABL+2β+
the number of neutrons present in the element 'L' is:

A
142
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B
144
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C
140
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D
146
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Solution

The correct option is B 144
α-decay
AZXαA4Z2Y
β-decay
AZXβ+−−AZ1Y
Now,
23892M2α−−23088N
23088N2β+−−−23086L
No. of neutrons in L = 230-86 = 144.

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