To determine which molecular characteristic will likely increase the solubility of a simple solute in an aqueous solution, we need to consider the interaction between the solute molecules and water molecules, which are polar.
Therefore, the correct option is The presence of polar group. Polar groups promote solubility by allowing better interaction with water molecules through hydrogen bonding or dipole-dipole attractions.
List I | List II | ||
|---|---|---|---|
| A | \(\Omega^{-1}\) | I | Specific conductance |
| B | \(∧\) | II | Electrical conductance |
| C | k | III | Specific resistance |
| D | \(\rho\) | IV | Equivalent conductance |
List I | List II | ||
|---|---|---|---|
| A | Constant heat (q = 0) | I | Isothermal |
| B | Reversible process at constant temperature (dT = 0) | II | Isometric |
| C | Constant volume (dV = 0) | III | Adiabatic |
| D | Constant pressure (dP = 0) | IV | Isobar |