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Consider the following equilibrium system - HSC - SSCE Chemistry - Question 23 - 2024 - Paper 1

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Consider the following equilibrium system. $[Co(H_2O)_6]^{2+}(aq) + 4Cl^-(aq) \rightleftharpoons [CoCl_4]^{2-}(aq) + 6H_2O(l)$ $[Co(H_2O)_6]^{2+}(aq)$ is pink and ... show full transcript

Worked Solution & Example Answer:Consider the following equilibrium system - HSC - SSCE Chemistry - Question 23 - 2024 - Paper 1

Step 1

Relate the observed colour change to the change in K_eq

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Answer

The mixture becomes more blue as temperature is increased, indicating an increase in the concentration of the blue complex ion [CoCl4]2[CoCl_4]^{2-}. This suggests that the forward reaction is favored at higher temperatures, leading to a shift in equilibrium towards products.

Thus, as temperature rises, the equilibrium shifts right, boosting the concentration of [CoCl4]2[CoCl_4]^{2-} at the expense of [Co(H2O)6]2+[Co(H_2O)_6]^{2+} and ClCl^- ions. In accordance with Le Chatelier's principle, the increase in temperature shifts the equilibrium position to favor the endothermic direction, which, in this case, is the formation of [CoCl4]2[CoCl_4]^{2-}.

This shift results in a larger value of the equilibrium constant KeqK_{eq}, defined as:

Keq=[[CoCl4]2][[Co(H2O)6]2+][Cl]4K_{eq} = \frac{[[CoCl_4]^{2-}]}{[[Co(H_2O)_6]^{2+}]\cdot [Cl^-]^4}

Thus, the increase in temperature not only alters the color but also influences the equilibrium constant KeqK_{eq}.

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