For the following equilibrium system, K = 3.50x 106 at 298 K. HCIO (aq) + OH (aq) = CIO (aq) + H₂O (1) Assuming that you start with equal concentrations of HCIO and OH", and that no CIO is initially present, which of the following best describes the equilibrium system? O Appreciable quantities of all species are present at equilibrium. O The reverse reaction is favored at equilibrium. O The forward reaction is favored at equilibrium.

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For the following equilibrium system, \( K = 3.50 \times 10^6 \) at 298 K.

\[
\text{HClO (aq)} + \text{OH}^- \text{ (aq)} \rightleftharpoons \text{ClO}^- \text{ (aq)} + \text{H}_2\text{O (l)}
\]

Assuming that you start with **equal concentrations** of HClO and OH\(^-\), and that no ClO\(^-\) is initially present, which of the following best describes the equilibrium system?

- ○ Appreciable quantities of all species are present at equilibrium.
- ● The reverse reaction is favored at equilibrium.
- ○ The forward reaction is favored at equilibrium.
Transcribed Image Text:For the following equilibrium system, \( K = 3.50 \times 10^6 \) at 298 K. \[ \text{HClO (aq)} + \text{OH}^- \text{ (aq)} \rightleftharpoons \text{ClO}^- \text{ (aq)} + \text{H}_2\text{O (l)} \] Assuming that you start with **equal concentrations** of HClO and OH\(^-\), and that no ClO\(^-\) is initially present, which of the following best describes the equilibrium system? - ○ Appreciable quantities of all species are present at equilibrium. - ● The reverse reaction is favored at equilibrium. - ○ The forward reaction is favored at equilibrium.
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