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Title: Titration of Mohr's salt with KMnO4 -percent purity question
Post by: aarna on January 26, 2023, 12:58:19 PM

Please help with the question attached below:

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Title: Re: Titration
Post by: chenbeier on January 26, 2023, 03:21:57 PM

Molar mass of Mohrs salt (NH4)2Fe(SO4)2 ? 6 H2O is 392,13 g/mol
1 ml of 0,1 N = 0,02 M KMnO4 is equal O,1 M Mohrs salt
50 ml is then equal 1,96 g.
2,5 g were weight before, the ratio is then 1,96 g/2,5 g = 0,784 equal 78,4%

Title: Re: Titration of Mohr's salt with KMnO4 -percent purity question
Post by: uma on January 29, 2023, 07:09:17 AM

Quote from: aarna on January 26, 2023, 12:58:19 PM
Please help with the question attached below:

Formula of Mohr's salt is FeSO₄.(NH₄)₂SO₄.6H₂O
During redox titrations, only Fe²⁺ oxidized to Fe³⁺
5 electrons + MnO₄^- ----> Mn ²⁺
5 Fe²⁺------> 5Fe³⁺ + 5 electrons
Equivalents of MnO4 - = N * V(L) = 0.0050 = equivalents of Fe²⁺
Equivalent of Fe²⁺ are moles of Fe²⁺ .
Moles of Fe²⁺ are moles of Mohr's salt = 0.0050 moles
mass of Mohr's salt in 2.5 g of sample = 0.0050 * 392 = 1.96 g
percent purity = 1.96 g/2.5 g X 100 %

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Chemistry Homework Help => CBSE XI and XII Chemistry => Topic started by: aarna on January 26, 2023, 12:58:19 PM