QUESTION IMAGE
Question
sulfur trioxide decomposes to form sulfur dioxide and oxygen, like this:
$2so_{3}(g)\to2so_{2}(g)+o_{2}(g)$
also, a chemist finds that at a certain temperature the equilibrium mixture of sulfur trioxide, sulfur dioxide, and oxygen has the following composition:
calculate the value of the equilibrium constant $k_{p}$ for this reaction. round your answer to 2 significant digits.
$k_{p}=\square$
Step1: Write the formula for \(K_p\)
For the reaction \(2SO_3(g)\to2SO_2(g)+O_2(g)\), the formula for \(K_p\) is \(K_p=\frac{P_{SO_2}^2\times P_{O_2}}{P_{SO_3}^2}\)
Step2: Substitute the values
Substitute \(P_{SO_3} = 73.6\ atm\), \(P_{SO_2}=79.5\ atm\), and \(P_{O_2} = 37.4\ atm\) into the formula:
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