According to the collision theory of reaction rates, which of the following is/are true? (Select all that apply.) Increasing the concentration of O2 + NO2 would have no effect on the rate of the reaction. In the presence of a catalyst, the value of activation energy for the reaction would be smaller than 211 kJ. Raising the temperature would increase the rate of the reaction by increasing the number of successful O2 + NO2 collisions. Raising the temperature would increase the rate of the reaction because the value of activation energy would be smaller than 211 kJ at a higher temperature. In the presence of a catalyst, the value of energy difference between products and reactant will be smaller than 200 kJ.
According to the collision theory of reaction rates, which of the following is/are true? (Select all that apply.) Increasing the concentration of O2 + NO2 would have no effect on the rate of the reaction. In the presence of a catalyst, the value of activation energy for the reaction would be smaller than 211 kJ. Raising the temperature would increase the rate of the reaction by increasing the number of successful O2 + NO2 collisions. Raising the temperature would increase the rate of the reaction because the value of activation energy would be smaller than 211 kJ at a higher temperature. In the presence of a catalyst, the value of energy difference between products and reactant will be smaller than 200 kJ.
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Collision theory of reaction rate: According to the collision theory of reaction rate, the randomly moving reactant molecules collide with each other to convert into product molecules.
If the energy of the collision is sufficient enough that it is equal to or greater than the activation energy of the reaction and the reactant molecule collides in the proper orientation, the collision results in the formation of the product. The number of collisions per second between the reactant molecules depends on the concentraion of reactants and temperature of the reaction.
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