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A reaction mixture, not at equilibrium, is composed of both N2O4(g) and NO2(g) in a closed container - HSC - SSCE Chemistry - Question 18 - 2024 - Paper 1

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A reaction mixture, not at equilibrium, is composed of both N2O4(g) and NO2(g) in a closed container. The reaction quotient for the system, Q, is given. $$Q = \frac... show full transcript

Worked Solution & Example Answer:A reaction mixture, not at equilibrium, is composed of both N2O4(g) and NO2(g) in a closed container - HSC - SSCE Chemistry - Question 18 - 2024 - Paper 1

Step 1

Which diagram shows how Q changes over time for this mixture?

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Answer

The reaction begins with the forward reaction dominating, which means that the concentration of products (NO2) is increasing while the concentration of reactants (N2O4) is decreasing. Therefore, Q will initially increase as more NO2 is produced relative to N2O4. As the system approaches equilibrium, the rates of the forward and reverse reactions will equalize, leading to a stabilization of Q at a constant value.

This behavior is best represented by Diagram B, where Q rises initially and then plateaus as equilibrium is approached, reflecting the change in the concentrations of the reactants and products.

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