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Question

The amount of anhydrous Na2CO3 present in 250 mL of 0.25 M solution is:

A
6.625 g
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B
66.25 g
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C
12.68 g
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D
24.35 g
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Solution

The correct option is A 6.625 g
We know,
Molarity M=moles of solutevolume of solution (mL)×1000
So, moles of solute = Molarity M × volume of solution
Moles of solute = 0.25×2501000 = 0.0625 g

molar mass of Na2CO3 = 106 g/mol
mass of solute = 0.0625×106 = 6.625g

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