Answer:
0.523 M
Step-by-step explanation:
The reaction between barium chloride and sodium sulfate is given by
BaCl₂(aq) + Na₂SO₄(aq) → BaSO₄(s) + 2NaCl(aq)
We are given,
Volume of Na₂SO₄ = 15.0 mL
Mass of of solid BaSO₄ = 1.83 g
Required to determine the molarity of Na₂SO₄ solution
we will use the following steps
Step 1: Determine moles of the solid BaSO₄
Mass of BaSO₄ = 1.83 g
To get the number of moles we divide mass by the molar mass
Molar mass of BaSO₄ = 233.38 g/mol
Number of moles = 1.83 g ÷ 233.38 g/mol
= 0.00784 moles
Step 2: Moles of sodium sulfate used
From the balanced equation for every 1 mole of sodium sulfate used 1 mole of BaSO₄ was produced.
Therefore, the mole ratio of Na₂SO₄ : BaSO₄ is 1 : 1
Hence, moles of Na₂SO₄ will also be 0.00784 moles
Step 3: Molarity of sodium sulfate solution
Volume of sodium sulfate = 15.0 mL or 0.015 L
Number of moles = 0.00784 moles
But, molarity = Moles ÷ Volume
= 0.00784 moles ÷ 0.015 L
= 0.5227 M
= 0.523 M
Thus, the molarity of original sodium sulfate is 0.523 M