Chapter 10: Problem 92
Chlorine trifluoride, \(\mathrm{ClF}_{3,}\) is a valuable reagent because it can be used to convert metal oxides to metal fluorides: \(6 \mathrm{NiO}(\mathrm{s})+4 \mathrm{ClF}_{3}(\mathrm{g}) \rightarrow\) \(6 \mathrm{NiF}_{2}(\mathrm{s})+2 \mathrm{Cl}_{2}(\mathrm{g})+3 \mathrm{O}_{2}(\mathrm{g})\) (a) What mass of NiO will react with \(\mathrm{ClF}_{3}\) gas if the gas has a pressure of \(250 \mathrm{mm}\) Hg at \(20^{\circ} \mathrm{C}\) in a 2.5 -L flask? (b) If the \(\mathrm{ClF}_{3}\) described in part (a) is completely consumed, what are the partial pressures of \(\mathrm{Cl}_{2}\) and of \(\mathrm{O}_{2}\) in the 2.5 -L flask at \(20^{\circ} \mathrm{C}\) (in mm Hg)? What is the total pressure in the flask?
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