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Water and chlorine, each at 1 atm pressure, are placed in a closed container at 375 K - VCE - SSCE Chemistry - Question 7 - 2002 - Paper 1

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Water and chlorine, each at 1 atm pressure, are placed in a closed container at 375 K. The following reaction occurs. $$2H_2O(g) + 2Cl_2(g) \rightleftharpoons 4HCl(... show full transcript

Worked Solution & Example Answer:Water and chlorine, each at 1 atm pressure, are placed in a closed container at 375 K - VCE - SSCE Chemistry - Question 7 - 2002 - Paper 1

Step 1

B. $2[Cl_2] > [HCl]$

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Answer

To determine the correct relationship at equilibrium, we analyze the equilibrium constant expression:

K=[HCl]4[O2][H2O]2[Cl2]2K = \frac{[HCl]^4 [O_2]}{[H_2O]^2 [Cl_2]^2}.

Given that KK is a large number (5×1045 \times 10^4), this indicates that the products are favored at equilibrium over the reactants.

  1. Produit Concentrations: This means that the concentration of [HCl][HCl] and [O2][O_2] must be significantly greater than that of the reactants ([H2O][H_2O] and [Cl2][Cl_2]).
  2. Shorten Expressive Terms: Rearranging the formula indicates that the concentration of [Cl2][Cl_2] would be less than the double of [HCl][HCl] (i.e., 2[Cl2]<[HCl]2[Cl_2] < [HCl]).
  3. Conclusion: Thus, the only statement that holds true is 2[Cl2]>[HCl]2[Cl_2] > [HCl], confirming Option B is valid.

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