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A chemical reaction is at equilibrium, how do the forward and reverse rates compare? A faster and more reactant producedB faster and more product producedC the same, and the reaction occurs in both directionsD the same, and the reaction has stopped

Question

A chemical reaction is at equilibrium, how do the forward and reverse rates compare? A faster and more reactant producedB faster and more product producedC the same, and the reaction occurs in both directionsD the same, and the reaction has stopped

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Solution

The correct answer is C. At equilibrium, the forward and reverse rates of a chemical reaction are the same, and the reaction occurs in both directions. This means that the rate at which the reactants are forming products is equal to the rate at which the products are forming reactants. The reaction hasn't stopped; it's just that the concentrations of the reactants and products remain constant over time because they are being formed and used up at the same rate.

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