Chapter 15: Problem 31
Suppose 0.086 mol of Bra is placed in a 1.26-L. flask and heated to \(1756 \mathrm{K}\), a temperature at which the halogen dissociates to atoms. $$ \mathrm{Br}_{2}(\mathrm{g}) \rightleftharpoons 2 \mathrm{Br}(\mathrm{g}) $$ If \(\mathrm{Br}_{2}\) is \(3.7 \%\) dissociated at this temperature, calculate \(K_{c}\)
Short Answer
Step by step solution
Determine initial concentrations
Calculate change in concentration
Determine equilibrium concentrations
Write expression for equilibrium constant \( K_c \)
Substitute concentrations into \( K_c \) expression
Calculate \( K_c \)
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