overall balanced reaction:

14H+ + C2O7^2- + 6Fe^2+ -> 2Cr^3+ + 7H2O + 6Fe^3+

.5021g of impure sample containing potassium dichromate was analyzed by titrating a standard iron (II) sulfate solution. If 6.74 mL of 0.2312 N of iron (II) sulfate was required to reach the equivalence point, calculate the % by mass of potassium dichromate in the sample using the concept of equivalent weight. (I can't see to get the answer 15.2%)
work: .5021g/ (6.74x10^-3L)(.2312 mol/L)(6 equivalents/1L) =53.7g
I've tried dividing it by the theretical equivalent of potassium dichromate but it doesn't work.

Thanks for help!

1 answer

nevermind! I got it!
Similar Questions
  1. In the reaction,K2Cr2O7 +14 HCl ----> 2KCl + 2CrCl3 + 3Cl2 + 7H2O how many moles of HCl act as reducing agent in balanced
    1. answers icon 1 answer
  2. Are my answers correct?C6H14 + 19/2 O2 -> 6 CO2 + 7H2O enthalpy change = -4163 kJ a) if 0.537 mol of carbon dioxide is produced
    1. answers icon 3 answers
    1. answers icon 1 answer
  3. KMnO4 + HCl → MnCl2 + Cl2 + H2O + KClIf the reaction occurs in an acidic solution where water and H+ ions are added to the
    1. answers icon 2 answers
more similar questions