Consider the following equilibrium: N2 (g) + O2 (g) ↔ 2 NO (g) At 25 oC, the partial pressures of the gases at equilibrium are as follows: N2 = 0.12 atm, O2 = 0.040 atm, and NO = 4.5 x 10-17 .  What is the value of the equilibrium constant, Kp?

Chemistry & Chemical Reactivity
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Chapter15: Principles Of Chemical Reactivity: Equilibria
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Problem 5PS: A mixture of SO2, O2, and SO3 at 1000 K contains the gases at the following concentrations: [SO2] =...
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Consider the following equilibrium:
N2 (g) + O2 (g) ↔ 2 NO (g)
At 25 oC, the partial pressures of the gases at equilibrium are as follows: N2 = 0.12 atm, O2 = 0.040 atm, and NO = 4.5 x 10-17 .  What is the value of the equilibrium constant, Kp?

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