To solve for the change in Gibbs free energy (\( \Delta G \)) when the volume of an ideal gas is reduced isothermally, we use the formula for isothermal processes:
\[ \Delta G = nRT \ln \left( \frac{V_2}{V_1} \right) \]
Where:
\( n = 2.0 \, \text{mol}, \quad R = 8.314 \, \text{J mol}^{-1} \text{K}^{-1}, \quad T = 300 \, \text{K}
\[ \Delta G = 2.0 \, \text{mol} \times 8.314 \, \text{J mol}^{-1} \text{K}^{-1} \times 300 \, \text{K} \times \ln \left( \frac{1}{2} \right) \]
\[ \Delta G = 2.0 \times 8.314 \times 300 \times (-0.6931) \, \text{J} \]
\[ \Delta G \approx -3458.66 \, \text{J} = -3.45866 \, \text{kJ} \]
\[ \Delta G = -3.46 \, \text{kJ} \]
Finally, we confirm that the calculated value, \( -3.46 \, \text{kJ} \), falls within the provided range of \( -3.44 \, \text{kJ} \) to \( -3.46 \, \text{kJ} \).
The number of chiral carbon centers in the following molecule is ............... 
A tube fitted with a semipermeable membrane is dipped into 0.001 M NaCl solution at 300 K as shown in the figure. Assume density of the solvent and solution are the same. At equilibrium, the height of the liquid column \( h \) (in cm) is ......... 
An electron at rest is accelerated through 10 kV potential. The de Broglie wavelength (in A) of the electron is .............
The number of stereoisomers possible for the following compound is .............. 