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Question

U92238 is known to undergo radioactive decay to form Pb82206 by emitting alpha particles and beta particles. A rock initially contained 68×10-6g ofU92238. If the number of alpha particles that it would emit during its radioactive decay of U92238 to Pb82206 in three half-lives is Z×1018then what is the value of Z?


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Solution

Step 1: Given data

Mass of U92238=68×10-6g

Number of half-lives=3

Step 2: Calculating the value of Z

U92238Pb82206+8He24+6

Initial moles of U92238=68×10-6g2380.286×10-6mole

Number of molecules of U92238 produced=0.286×10-6×NA

=0.286×10-6×6.022×10231.72×1017

After three half-lives number of molecules=Numberofmlecules(2)3

=1.72×101780.215×1017

So, the number of molecules of uranium decayed=1.72×1017-0.215×10171.5×1017

From the reaction, it produces eight alpha particles, so the number of alpha particles produced=8×1.5×101712×1017or1.2×1018

Therefore, the value of Z=1.2


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