QUESTION IMAGE
Question
dans la réaction ci - dessous, indiquez le nombre de neutrons libres formés
$_{98}^{252}cf\to_{44}^{108}ru + _{54}^{140}xe+?_{0}^{1}n$
Step1: Balance mass - number
The mass - number of Cf is 252. The sum of the mass - numbers of Ru and Xe and neutrons should equal 252. Mass - number of Ru is 108 and of Xe is 140. Let the number of neutrons be $x$. Then $108 + 140+x=252$.
Step2: Solve for $x$
$108 + 140+x=252$ simplifies to $248+x = 252$. Subtracting 248 from both sides gives $x=252 - 248=4$.
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