Problem

For the gas-phase reaction 2N2O5 → 4NO2 + O2, the rate constant k is 1.73 X 10− 5 s −1 at...

For the gas-phase reaction 2N2O5 → 4NO2 + O2, the rate constant k is 1.73 X 10− 5 s −1 at 25°C. The observed rate law is r = k[N2O5]. (a) Calculate r and J for this reaction in a 12.0-dm3 container with P(N2O5) = 0.10 atm at 25°C. (b) Calculate d[N2O5]/dt for the conditions of part (a). (c) Calculate the number of N2O5 molecules that decompose in 1 s for the conditions of (a). (d) What are k, r, and J for the conditions of (a) if the reaction is written

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