To convert \(K_p\) to \(K_c\):
\[ K_p = K_c \cdot (RT)^{\Delta n_g} \]
For the reaction \( \text{N}_2\text{O}_4(g) \leftrightharpoons 2\text{NO}_2(g) \),
\[ \Delta n_g = 2 - 1 = 1 \]
Therefore:
\[ K_c = \frac{K_p}{RT} = \frac{0.492}{0.082 \times 300} = 2 \times 10^{-2} \]
So, the correct answer is: $2 \times 10^{-2}$
Step 1: Relation between \( K_p \) and \( K_c \).
\[ K_p = K_c (RT)^{\Delta n} \] where \(\Delta n = \text{moles of gaseous products} - \text{moles of gaseous reactants}\)
\[ \Delta n = 2 - 1 = 1 \]
\[ K_p = K_c (RT)^{1} \] \[ K_c = \frac{K_p}{RT} \]
\[ K_c = \frac{0.492}{0.082 \times 300} \] \[ K_c = \frac{0.492}{24.6} = 0.02 = 2 \times 10^{-2} \]
\[ \boxed{K_c = 2 \times 10^{-2}} \]
The wavelength of spectral line obtained in the spectrum of Li$^{2+}$ ion, when the transition takes place between two levels whose sum is 4 and difference is 2, is
Structures of four disaccharides are given below. Among the given disaccharides, the non-reducing sugar is: 
x mg of Mg(OH)$_2$ (molar mass = 58) is required to be dissolved in 1.0 L of water to produce a pH of 10.0 at 298 K. The value of x is ____ mg. (Nearest integer) (Given: Mg(OH)$_2$ is assumed to dissociate completely in H$_2$O)
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\(A_2 B_3(aq) \leftrightharpoons 2{A_3} (aq)+3B_{{2-}}(aq)\)
Identify the correct truth table of the given logic circuit. 