1. Write the equilibrium expression and identify the specific equilibrium constant sympol if possible, otherwise use Ke. (a) 2 H2O(1) = H3O* (aq) + OH´(aq) (b) HCN (aq) + H2O (1) = H3O* (aq) + CN¯ (aq)

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Chapter1: Chemical Foundations
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Answer all problems individually. Make sure to box your final answers. Show all necessary
processes.
1. Write the equilibrium expression and identify the specific equilibrium constant sympol if
possible, otherwise use Ke.
(a) 2 H2O(1) = H3O* (aq) + OH(aq)
(b) HCN (aq) + H2O (1) = H3O* (aq) + CN¯ (aq)
2. A closed system initially containing 1.000 x 10³ M H2 and 2.000 x 10³ M I2 at 448 °C can
reach equilibrium. Analysis of the equilibrium mixture shows that the concentration of HI is
1.87 x 10³ M. Calculate Ke at 448 °C for the reaction taking place, which is
H,(g) + I,(g) –
2HI(g)
Transcribed Image Text:Answer all problems individually. Make sure to box your final answers. Show all necessary processes. 1. Write the equilibrium expression and identify the specific equilibrium constant sympol if possible, otherwise use Ke. (a) 2 H2O(1) = H3O* (aq) + OH(aq) (b) HCN (aq) + H2O (1) = H3O* (aq) + CN¯ (aq) 2. A closed system initially containing 1.000 x 10³ M H2 and 2.000 x 10³ M I2 at 448 °C can reach equilibrium. Analysis of the equilibrium mixture shows that the concentration of HI is 1.87 x 10³ M. Calculate Ke at 448 °C for the reaction taking place, which is H,(g) + I,(g) – 2HI(g)
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