Potassium acid oxalate K2C2O4.3H2C2O4.4H2O can be oxidized by MnO−4 in acidic medium. Calculate the volume of 0.3MMnO−4 reacting in acid solution with 10.16g of the acid oxalate.
(Molar mass of potassium acid oxalate is 508gmol−1.)
A
106.7mL
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B
160.0mL
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C
1.06L
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D
0.16L
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Solution
The correct option is A106.7mL K2+3C2O4.3H2+3C2O4.4H2OPotassium acid oxalate++7MnO−4H+⟶+2Mn2+++4CO2
nf=(|Change in O.S.|)×Number of atoms nfpotassium acid oxalate=(|+3−(+4)|)×8=8 nfMnO−4=(|+7−(+2)|)×1=5
From the law of equivalence, Equivalents of potassium acid oxalate = Equivalents of MnO−4 Wpotassium acid oxalateMolar mass of potassium acid oxalate×nfpotassium acid oxalate=MMnO−4×VMnO−4×nfMnO−4 10.16g508gmol−1×8=(0.3molL−1)×VMnO−4×5 ∴VMnO−4≈0.1067L≈106.7mL