Suppose a 250. mL flask is filled with 1.0 mol of NO, and 0.20 mol of NO,. The following reaction becomes possible: NO,(g) + NO(8) =2NO,(g) The equilibrium constant K for this reaction is 0.870 at the temperature of the flask. Calculate the equilibrium molarity of NO. Round your answer to two decimal places.

Chemistry: Principles and Practice
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Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
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Chapter14: Chemical Equilibrium
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Problem 14.52QE: Consider 0.200 mol phosphorus pentachloride sealed in a 2.0-L container at 620 K. The equilibrium...
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Suppose a 250. mL flask is filled with 1.0 mol of NO, and 0.20 mol of NO,. The following reaction becomes possible:
NO, (8) + NO(8) =2NO,(8)
The equilibrium constant K for this reaction is 0.870 at the temperature of the flask.
Calculate the equilibrium molarity of NO. Round your answer to two decimal places.
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Transcribed Image Text:constant Suppose a 250. mL flask is filled with 1.0 mol of NO, and 0.20 mol of NO,. The following reaction becomes possible: NO, (8) + NO(8) =2NO,(8) The equilibrium constant K for this reaction is 0.870 at the temperature of the flask. Calculate the equilibrium molarity of NO. Round your answer to two decimal places. M Check 2021 McGraw Explanațion acer
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