Use \(\Delta H = \Delta U + \Delta nRT \) to compare enthalpy and internal energy. For pH calculations, consider the dissociation capability of acids.
Analysis of Each Statement:
\( \text{Oxidation number of Cr} + 5(-2) = 0 \).
\( \text{Oxidation number of Cr} + (-2 \times 4) + (-2) = 0 \)
\(\text{Oxidation number of Cr} = +6\).
For an ideal gas:
\( \Delta H = \Delta U + \Delta n_gRT \),
\(\text{N}_2\text{O}_4(g) \rightarrow 2\text{NO}_2(g)\),
\( \Delta n_g = 2 - 1 = 1\). Therefore, \(\Delta H > \Delta U\). This statement is correct.
\( \frac{RT}{F} = \frac{(8.314)(298)}{96485} \approx 0.0257 \text{ V}. \)
Conclusion: The correct statements are: (A), (B).
The above reaction is an example of
A quantity \( X \) is given by: \[ X = \frac{\epsilon_0 L \Delta V}{\Delta t} \] where:
- \( \epsilon_0 \) is the permittivity of free space,
- \( L \) is the length,
- \( \Delta V \) is the potential difference,
- \( \Delta t \) is the time interval.
The dimension of \( X \) is the same as that of: