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If 25.0cm3 of 0.1 MH2S04 solution neutralized a solution containing 1.06g of sodium carbonate in 250cm3 of solution, calculate,

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asked Jul 7, 2021 in Chemistry Form 3 by anony mous

If 25.0cm³ of 0.1 MH₂S0₄ solution neutralized a solution containing 1.06g of sodium carbonate in 250cm³ of solution, calculate,

The molarity of sodium carbonate solution (Na=23, 0=16,C=12)
Volume of sodium carbonate solution used.

the mole formulae and chemical equation
molar solutions
molar gas volume

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answered Jul 7, 2021 by anony mous

Moles of Na₂CO₃
R.F.M=106
=^1.06/₁₀₆
0.01moles
If 0.01moles→250cm³
? →1000cm³
1000 × 0.01 =0.04M
250
H₂SO₄ + Na₂CO₃→Na₂SO_4(aq) + CO_2(g)+ H₂O_(l)
From the r.r of 1:1
Moles of H₂SO₄ used=Moles of Na₂CO₃
Moles of H₂SO₄used
0.1Moles → 1000cm³
?   → 25cm³
  0.1×25 =0.0025moles
1000
If 0.04moles →1000cm³
0.0025moles→ ?
0.0025 × 1000
   0.04
=62.5cm³

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