26. Calculate the enthalpy change for the reaction below. NO(g) + O(g) → NO₂(g) Given following data: NO(g) + 03(g) →→ NO₂(g) + O₂(g) 03(g) →1.50₂(g) O₂(g) → 20(g) AH-198.9 kJ AH = -142.3 kJ ΔΗ = 495.0 kJ

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**26. Calculate the enthalpy change for the reaction below.**

\[ \text{NO(g) + O(g)} \rightarrow \text{NO}_2\text{(g)} \]

**Given the following data:**
- \(\text{NO(g) + O}_3\text{(g)} \rightarrow \text{NO}_2\text{(g) + O}_2\text{(g)}\)  \[ \Delta H = -198.9 \, \text{kJ} \]
- \(\text{O}_3\text{(g)} \rightarrow 1.5\text{O}_2\text{(g)}\)  \[ \Delta H = -142.3 \, \text{kJ} \]
- \(\text{O}_2\text{(g)} \rightarrow 2\text{O(g)}\)  \[ \Delta H = 495.0 \, \text{kJ} \]
Transcribed Image Text:**26. Calculate the enthalpy change for the reaction below.** \[ \text{NO(g) + O(g)} \rightarrow \text{NO}_2\text{(g)} \] **Given the following data:** - \(\text{NO(g) + O}_3\text{(g)} \rightarrow \text{NO}_2\text{(g) + O}_2\text{(g)}\) \[ \Delta H = -198.9 \, \text{kJ} \] - \(\text{O}_3\text{(g)} \rightarrow 1.5\text{O}_2\text{(g)}\) \[ \Delta H = -142.3 \, \text{kJ} \] - \(\text{O}_2\text{(g)} \rightarrow 2\text{O(g)}\) \[ \Delta H = 495.0 \, \text{kJ} \]
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