Answer:
Molarity of Na₂CO₃ = 0.25M
% mass = 2.69
Explanation:
Molarity means mole of solute in 1L of solution
Molar mass of solute (Na₂CO₃) = 105,98 g/m
Moles = mass / molar mass → 6.73 g / 105.98 g/m = 0.0635 m
Mol/L = [M]
0.0635 mol/0.250L = 0.25M
Density of solution = Solution mass / Solution volume
1 g/ml = Solution mass / 250 mL → Solution mass is 250g
% mass will be:
In 250 g of solution we have 6.73 g of solute
in 100 g of solution we have (100 . 6.73)/250 = 2.69
Answer:
The molarity of Na2CO3 in the solution = 0.254 M
The mass % of Na2CO3 is 2.69 %
Explanation:
Step 1: Data given
Mass of Na2CO3 = 6.73 grams
Volume of the solution = 250.0 mL
Density = 1.00g/mL
Molar mass of Na2CO3 = 105.99 g/mol
Step 2: Calculate moles of Na2CO3
Moles Na2CO3 = 6.73 grams / 105.99 g/mol
Moles Na2CO3 = 0.0635 moles
Step 3: Calculate molarity of Na2CO3
Molarity = moles / volume
Molarity = 0.0635 moles / 0.250 L
Molarity = 0.254 M
Step 4: Calculate mass of the solution
Mass = volume * density
Mass = 250 mL * 1.00g/mL
Mass = 250 grams
Step 5: Calculate mass %
mass% = (6.73 g / 250 g)*100%
mass % = 2.69 %
The mass % of Na2CO3 is 2.69 %
