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8 August, 21:48

A 50.0 mL sample containing Cd2 + and Mn2 + was treated with 56.3 mL of 0.0500 M EDTA. Titration of the excess unreacted EDTA required 13.4 mL of 0.0310 M Ca2+. The Cd2 + was displaced from EDTA by the addition of an excess of CN-. Titration of the newly freed EDTA required 28.2 mL of 0.0310 M Ca2+. What are the concentrations of Cd2 + and Mn2 + in the original solution?

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  1. 8 August, 22:10
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    The concentration of Cd2 + is 0.0175 M

    The concentration of Mn2 + is 0.0305 M

    Explanation:

    Step 1: Data given

    A 50.0 mL sample contains Cd2 + and Mn2+

    volume of 0.05 M EDTA = 56.3 mL

    Titration of the excess unreacted EDTA required 13.4 mL of 0.0310 M Ca2+.

    Titration of the newly freed EDTA required 28.2 mL of 0.0310 M Ca2+

    Step 2: Calculate mole ratio

    The reaction of EDTA and any metal ion is 1:1, the number of mol of Cd2 + and Mn2 + in the mixture equals the total number of mol of EDTA minus the number of mol of EDTA consumed in the back titration with Ca2+:

    Step 3: Calculate total mol of EDTA

    Total EDTA = (56.3 mL EDTA) (0.0500 M EDTA) = 0.002815 mol EDTA

    Consumed EDTA = 0.002815 mol - (13.4 mL Ca2+) (0.0310 M Ca2+) = 0.002815 - 0.0004154 = 0.0023996 mol EDTA

    Step 4: Calculate total moles of CD2 + and Mn2+

    So, the total moles of Cd2 + and Mn2 + must be 0.0023996 mol

    Step 5: Calculate remaining moles of Cd2+

    The quantity of cadmium must be the same as the quantity of EDTA freed after the reaction with cyanide:

    Moles Cd2 + = (28.2 mL Ca2+) (0.0310 M Ca2+) = 0.0008742 mol Cd2+.

    Step 6: Calculate remaining moles of Mn2+

    The remaining moles must be Mn2+: 0.0023996 - 0.0008742 = 0.0015254 moles Mn2+

    Step 7: Calculate initial concentrations

    The initial concentrations must have been:

    (0.0008742 mol Cd2+) / (50.0 mL) = 0.0175 M Cd2+

    (0.0015254 mol Mn2+) / (50.0 mL) = 0.0305 M Mn2+

    The concentration of Cd2 + is 0.0175 M

    The concentration of Mn2 + is 0.0305 M
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