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A 25.0 mL aliquot of 0.0430 0.0430 M EDTA EDTA was added to a 56.0 56.0 mL solution containing an unknown concentration of V 3 + V3+ . All of the V 3 + V3+ present in the solution formed a complex with EDTA EDTA , leaving an excess of EDTA EDTA in solution. This solution was back-titrated with a 0.0490 0.0490 M Ga 3 + Ga3+ solution until all of the EDTA EDTA reacted, requiring 13.0 13.0 mL of the Ga 3 + Ga3+ solution. What was the original concentration of the V 3 + V3+ solution?

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temmydbrain

Answer:

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Explanation:

As we know the reaction of  EDTA and [tex]Ga^3[/tex]+ and EDTA and [tex]V^3[/tex]+

Let us say that the ratio is 1:1

Therefore, the number of moles of [tex]Ga^3[/tex]+ = molarity * volume

                                    = 0.0400M * 0.011L

                                    = 0.00044 moles

Therefore excess EDTA moles = 0.00044 moles

Given , initial moles of EDTA  = 0.0430 M * 0.025 L

                                        = 0.001075

Therefore reacting moles of EDTA with [tex]V^3+[/tex] = 0.001075 - 0.00044 = 0.000675 moles

Let us say that the ratio between [tex]V^3+[/tex] and EDTA is 1:1

Therefore moles of [tex]V^3+[/tex] = 0.000675 moles

Molarity = moles / volume

                                    = 0.000675 moles / 0.057 L

                                    = 0.011 M (answer).

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