MHT CET · Chemistry · Chemical Kinetics
\({}_{90}\mathrm{Th}^{232} \)\(\longrightarrow{ }_{82} \mathrm{~Pb}^{208}\). The number of \(\alpha\) and \(\beta\) -particles emitted during the above reaction is
- A \(8 \alpha\) and \(4 \beta\)
- B \(8 \alpha\) and \(16 \beta\)
- C \(4 \alpha\) and \(2 \beta\)
- D \(6 \alpha\) and \(4 \beta\)
Answer & Solution
Correct Answer
(D) \(6 \alpha\) and \(4 \beta\)
Step-by-step Solution
Detailed explanation
No. of \(\alpha\) particles \(=\frac{232-208}{4}=\frac{24}{4}=6 \alpha\)
No. of \(\beta\) particles \(=2 \times 6-(90-82)\)
\(
\begin{array}{l}
=12-8 \\
=4 \beta
\end{array}
\)
Hence, \(6 \alpha\) and \(4 \beta\) particles are emitted.
No. of \(\beta\) particles \(=2 \times 6-(90-82)\)
\(
\begin{array}{l}
=12-8 \\
=4 \beta
\end{array}
\)
Hence, \(6 \alpha\) and \(4 \beta\) particles are emitted.
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