The rate law for the reaction of acetone, HCl and iodine was found to be rate=k[I2]^0[acetone][HCl] What is the rate constant for the reaction if the rate was found to be 8.4×10^-4 M/s when The initial concentrations of acetone, HCl and iodine or 0.080M, 0.04M, and 0.0002M respectively

Chemistry: The Molecular Science
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Chapter11: Chemical Kinetics: Rates Of Reactions
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The rate law for the reaction of acetone, HCl and iodine was found to be rate=k[I2]^0[acetone][HCl] What is the rate constant for the reaction if the rate was found to be 8.4×10^-4 M/s when The initial concentrations of acetone, HCl and iodine or 0.080M, 0.04M, and 0.0002M respectively?
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