For a fast pre-equilibrium where Step 1 is A ⇌ I and Step 2 I → P is slow, the rate law can often be expressed in terms of the equilibrium constant K1 and a rate constant. Which expression is correct?

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Multiple Choice

For a fast pre-equilibrium where Step 1 is A ⇌ I and Step 2 I → P is slow, the rate law can often be expressed in terms of the equilibrium constant K1 and a rate constant. Which expression is correct?

Fast pre-equilibrium means the first step A ⇌ I reaches equilibrium quickly, and the second step I → P is the slow, rate-determining step. The overall rate is governed by the slow step, so Rate = k2[I]. At equilibrium, [I] = K1[A], where K1 is the equilibrium constant for A ⇌ I. Substituting gives Rate = k2 K1 [A]. This directly matches the expression in the option. The other forms don’t fit because they either imply the rate depends on the intermediate concentration [I] without relating it to [A], or involve a species not present in the mechanism, or assume the wrong step controls the rate.

For a fast pre-equilibrium where Step 1 is A ⇌ I and Step 2 I → P is slow, the rate law can often be expressed in terms of the equilibrium constant K1 and a rate constant. Which expression is correct?

Explore Chemical Kinetics Test. Challenge yourself with multiple choice questions that include hints and detailed explanations. Ace your exam by testing your knowledge today!

For a fast pre-equilibrium where Step 1 is A ⇌ I and Step 2 I → P is slow, the rate law can often be expressed in terms of the equilibrium constant K1 and a rate constant. Which expression is correct?

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