MnO4-?(aq) + 8H+?(aq) ?+ 5e-? ?→? ?Mn2+?(aq) ?+ 4H2O (aq)
purple? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? colourless
A health supplement tablet contain iron(II)sulfate was analysed by titration. A tablet weighing 2.25 g was dissolved in dilute sulfuric acid and titrated against 0.100 mol dm-3?KMnO4?.The titration required 26.50 cm3 for complete reaction. Calculate the percentage by mass of iron in the table.
Answer
Step 1: Write the balanced equation for the reaction
oxidation: Fe2+?(aq) ?→? ?Fe3+?(aq) ?+?e-
reduction: MnO4-?(aq) + 8H+?(aq) ?+ 5e-? ?→? ?Mn2+?(aq) ?+ 4H2O (l)
overall:?MnO4-?(aq) + 8H+?(aq) ?+ 5Fe2+?(aq)? ?→? ?Mn2+?(aq) ?+ 4H2O (l) + 5Fe3+?(aq)
Step 2: Determine the amount of MnO4-?used in the titration
moles of MnO4-??= 0.0265 dm3??x? 0.100 mol dm-3?=?0.00265 mol
Step 3:?Determine the amount of iron in the reaction
From the equation for the reaction we know the reacting ratio??MnO4-?:?Fe2+?= 1: 5
∴ moles of?Fe2+?=?0.00265 mol MnO4-?x 5 =?0.01325 mol
Step 4:?Convert moles into mass of iron
Mass of iron =?0.01325 mol x 55.85 gmol-1?=?0.740 g
Step 5:?find the percentage of iron in the tablet
∴ % Fe in the tablet = (0.740/ 2.25)? x 100 =?32.9%
Cr2O7-?(aq) + 14H+?(aq) ?+ 6e-? ?→? ?2Cr3+?(aq) ?+ 7H2O (l)
orange? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? green


The steps in producing a balanced redox equation between iron(II) and dichromate(VI)
Always show your working in redox titration problems as marks can be awarded for the steps even if the final answer is wrong.
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