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प्रश्न
A nucleus with Z = 92 emits the following in a sequence:
α, β‾, β‾, α, α, α, α, α, β‾, β‾, α, β+, β+, α
Then Z of the resulting nucleus is ______.
पर्याय
76
78
82
74
MCQ
रिकाम्या जागा भरा
उत्तर
A nucleus with Z = 92 emits the following in a sequence:
α, β‾, β‾, α, α, α, α, α, β‾, β‾, α, β+, β+, α
Then Z of the resulting nucleus is 78.
Explanation:
The number of α-particles released = 8
Decrease in atomic number = 8 × 2 = 16
The number of β‾ particles released = 4
Increase in atomic number = 4 × 1 = 4
Also the number of β+ particles released is 2, which should decrease the atomic number by 2.
Therefore the final atomic number of resulting nucleus
= Z - 16 + 4 - 2
= Z - 14
= 92 - 14
= 78
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