Home
Class 11
CHEMISTRY
A solution containing 2.68 xx 10^(-3) m...

A solution containing `2.68 xx 10^(-3)` mol of `A^(n+)` ions requires `1.61xx10^(-3)` mol of `MnO_(4)^(-)` for the complete oxidation of `A^(n+) " to "AO_3^(-)` in acidic medium. What is the value of n ?

Text Solution

Verified by Experts

The correct Answer is:
B

Equivalents of `A^(n+)` = Eqs.of `MnO_4^(-)`
`2.68xx10^(-3)xx(5-n)=1.61xx10^(-3)xx5, :. N ~~2`
Promotional Banner

Topper's Solved these Questions

  • REDOX REACTIONS

    AAKASH SERIES|Exercise ADDITIONAL PRACTICE EXERCISE PRACTICE SHEET (ADVANCED) (More than One correct answer Type Questions)|35 Videos
  • REDOX REACTIONS

    AAKASH SERIES|Exercise ADDITIONAL PRACTICE EXERCISE (LEVEL - II (LECTURE SHEET (ADVANCED) (Matrix Matching Type Questions)|2 Videos
  • PURIFICATION OF ORGANIC COMPOUNDS AND IUPAC NOMENCLATURE

    AAKASH SERIES|Exercise ADDITIONAL PRCATICE EXERCISE (LEVEL - II (LECTURE SHEET (ADVANCED) INTEGER TYPE QUESTIONS)|2 Videos
  • REVISION EXERCISE

    AAKASH SERIES|Exercise CHEMICAL EQUILIBRIUM|107 Videos

Similar Questions

Explore conceptually related problems

0.01 mole of FeS_n (iron (II) sulphide) required 0.06 mole of AO_(4)^(3-) for complete oxidation. The species formed are FeO, SO_2 and A^(2+) . Calculate the value of n.

100 ml of 0.1N FeSO_4 solution will be completely oxidised by 'x' gms of K_2Cr_2O_7 in acidic medium (Mol.wt = 294). The value of 'x' is

One mole of AO_(2)^(-) is oxidised to A^(n+) in acidic solutions by 0.4 mole of permanganate. Calculate the value of n in A^(n+) .

The charge required for the oxidation of one mole of Mn_3O_4 " to " MnO_4^(2-) in alkaline medium is_____

1 mol of equimolar mixture of ferric oxalate and ferrous oxalate will require x mol of KMnO_(4) in acidic medium for complete oxidation. X is

One litre glass bubl contains 2 xx 10^(21) molecules of nitrogen at a pressure of 7.57 xx 10^(-3)N.m^(-2) . Find out the RMS velocity of nitrogen.