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Question of 155

Q.Define the following

(a) pH of a solution
(b) Solubility product
(c) Common ion effect
Jammu Kashmir JkboseJammu and Kashmir Board of School Education (Class 11) 2026Subjective· 3mImportance★★★★★
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pH quantifies acidity via [H+]; Ksp quantifies how much a sparingly soluble salt dissolves; the common ion effect is the suppression of ionisation/solubility by adding a shared ion — all governed by Le Chatelier's principle applied to ionic equilibria.

  1. pH of a solution: pH is defined as the negative logarithm (to base 10) of the molar concentration of hydrogen ions (H+, more precisely H3O+) in a solution: pH = -log10 [H+] It provides a convenient scale (typically 0-14 in aqueous solutions at 25 degC) to express acidity or basicity: pH < 7 is acidic, pH = 7 is neutral, pH > 7 is basic.
  2. Solubility product (Ksp): For a sparingly soluble ionic salt in equilibrium with its saturated solution, e.g. AxBy(s) <=> xA^(y+)(aq) + yB^(x-)(aq), the solubility product is the equilibrium constant for this dissolution equilibrium: Ksp = [A^(y+)]^x [B^(x-)]^y It is defined as the product of the molar concentrations of the constituent ions, each raised to the power equal to its stoichiometric coefficient in the balanced dissolution equation, at a given temperature. If the ionic product exceeds Ksp, precipitation occurs.
  3. Common ion effect: …

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