Write the rate of reaction in terms of the rate of disappearance of reactant and the rate of formation of products:
a. NO(g)+O3(g)→NO2(g)+O2(g)
b. 2C2H6(g)+7O2(g)→4CO2(g)+6H2O(aq)
c. H2(g)+I2(g)→2HI(g)
d. 4OH(g)+H2S(g)→SO2(g)+2H2O(aq)+H2(g)
(2) Determine the value of the rate constant for the elementary reaction:
I2(g)+H2(g)→2HI(aq)
Given that when [Br2] is 0.15 M and [H2] is 0.2M, the rate of reaction is 0.005 M s-1 at 298 K.
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Expert's answer
2020-07-14T22:53:53-0400
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