The reaction XY (s) →X (g) + Y (g) is monitored as a function of time in a closed 1.00L container at 24.9 °C. A plot of 1/[XY] as a function of time yields a straight line. The slope of the straight line is 0.44 M1s. 2. a. What is the rate constant k for this reaction at this temperature? b. What is the rate law for this reaction? C. What is the half-life when the initial concentration is 0.67 M? d. If the initial concentration of XY is 0.225 M under the same conditions above (24.9 °C, 1.00 L vessel) what are the partial pressures (in bar) of X and Y after 1.00 minute and 15.00 seconds? Think stoichiometry.

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The reaction XY (s) →X (g) + Y (g) is monitored as a function of time in a closed 1.00L container at 24.9 °C. A
plot of 1/[XY] as a function of time yields a straight line. The slope of the straight line is 0.44 Mª sª.
2.
a.
What is the rate constant k for this reaction at this temperature?
b. What is the rate law for this reaction?
с.
What is the half-life when the initial concentration is 0.67 M?
d. If the initial concentration of XY is 0.225 M under the same conditions above (24.9 °C, 1.00 L vessel)
what are the partial pressures (in bar) of X and Y after 1.00 minute and 15.00 seconds? Think
stoichiometry.
Transcribed Image Text:The reaction XY (s) →X (g) + Y (g) is monitored as a function of time in a closed 1.00L container at 24.9 °C. A plot of 1/[XY] as a function of time yields a straight line. The slope of the straight line is 0.44 Mª sª. 2. a. What is the rate constant k for this reaction at this temperature? b. What is the rate law for this reaction? с. What is the half-life when the initial concentration is 0.67 M? d. If the initial concentration of XY is 0.225 M under the same conditions above (24.9 °C, 1.00 L vessel) what are the partial pressures (in bar) of X and Y after 1.00 minute and 15.00 seconds? Think stoichiometry.
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