Q1) A solution contains Fe2+ and Fe3+. 25cm3 of the above solution was taken in a titration flask,acidified with dil. sulphuric & titrated with 0.1M KMnO4 solution.The volume of KMnO4 needed = 12.5ml.
Another 25ml of the original solution was taken & excess SO2 was passed through it,then the solution was boiled & cooled acidified & the resulting sol' required 37.5ml of 0.1M KMnO4 for complete neutralisation.Calculate the concentration of Fe2+ and Fe3+ in the original solution.
Just wanted to makesure I've understood the problem.
Initially,on reacting with acidified permanganate,Fe2+ gets oxidised to Fe3+ so we can find the no. of moles of Fe2+ from this.
Then when SO2 was passed ,Fe3+ gets reduced to Fe2+ and so we can find the no. of moles of Fe3+ ?
Q2) State how you could obtain pure Mg from Carnalite.
Heat the mineral(KCl.MgCl2.6H2O) until all the water evaporates,then add excess NaOH and filter.Residue contains Mg(OH)2.
Then add HCl to the residue?and electrolyse MgCl2 ?
I would really appreciate a quick response cause my chem test's in a few hours.
Thank you.