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A sparingly soluble salt gets precipitated only when the product of concentration of its ions in the solution (Qsp) becomes greater than its solubility product. If the solubility of BaSO4in water is 8 × 10–4mol dm–3. Calculate its solubility in 0.01 mol dm–3of H2SO4.
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The correct answer is:
6 × 10–4mol dm–3
Correct Option is : (C)
6 × 10–4mol dm–3
6 × 10–4mol dm–3
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