In the complete natural disintegration of Uranium-238 () to the stable isotope Lead-206 (), calculat — Nuclear Chemistry and Radioactivity Chemistry Question
Question
In the complete natural disintegration of Uranium-238 (${}_{92}^{238}U$) to the stable isotope Lead-206 (${}_{82}^{206}Pb$), calculate the total number of $\alpha$ and $\beta^-$ particles emitted respectively.
Answer: A
💡 Solution & Explanation
Change in mass $\Delta A = 238 - 206 = 32$. Since only $\alpha$ -particles change mass, $n_\alpha = 32/4 = 8$. Emitting $8\alpha$ reduces $Z$ by $16$ ($92 - 16 = 76$). The final $Z$ is $82$. The difference ($82 - 76 = 6$) represents the number of $\beta^-$ particles emitted.
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