Although dissolution of NH4Cl in water is endothermic yet it dissolves as it takes heat form surroundings so as to overcome lattice energy therefore, it dissolves and yet the process is endothermic but ΔS is +ve. If true enter 1, else enter 0.
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Solution
The correct option is A 1 Dissolution of NH4Cl in water: There is a final solution, that is the water molecules pull apart the ammonium chloride lattice as a result of dipole - dipole interactions of the charged ions in the lattice in a reaction called hydration - the NH4Cl dissolves to yield [NH4]+ and [Cl]− ions NH4Cl(s)→[NH4]+(aq)+[Cl]−(aq) here as no of ions in solution increases so entropy of system increases & ΔS is +ve.