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Question
part a
0.665 mol magnesium fluoride
m$_{\text{mgf}_2}$ =
\boxed{} g
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Step1: Find molar mass of MgF₂
Molar mass of Mg: \(24.305\space g/mol\), F: \(18.998\space g/mol\). For \(MgF_2\), molar mass \(M = 24.305 + 2\times18.998 = 24.305 + 37.996 = 62.301\space g/mol\).
Step2: Calculate mass using \(m = n\times M\)
Given \(n = 0.665\space mol\), \(M = 62.301\space g/mol\). So \(m = 0.665\times62.301\approx 41.43\space g\).
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\(41.4\) (or more precise \(41.43\))