An element A in a compound ABD has oxidation number A n - It is oxidised by Cr 2 O 7-2 in acidic medium- In the experiment 1-68 - 10-3 x moles of K 2 Cr 2 O 7 were used for 3-26 - 10-3 moles of ABD- The new oxidation number of A after oxidation is-A- -nB- 3C- 3-nD- n-3

The correct option is C 3 n First let us write down the reaction: Cr_2O^2 _7 + A^n BD ⟶ Cr^3+ + A^ n+x From stoichiometry, we have: Equivalents of Cr_2O^2 _ ...

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Standard XII

Chemistry

Types of Redox Reactions

An element A ...

Question

An element A in a compound ABD has oxidation number A ^n-. It is oxidised by $C r_{2} O_{7}^{- 2}$ in acidic medium. In the experiment 1.68 $\times$ $10^{- 3}$ x moles of $K_{2} C r_{2} O_{7}$ were used for 3.26 $\times$ $10^{- 3}$ moles of ABD. The new oxidation number of A after oxidation is:

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3-n

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n-3

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Solution

The correct option is B
3-n

First - let us write down the reaction:
$C r_{2} O_{7}^{2 -} + A^{n -} B D ⟶ C r^{3 +} + A^{- n + x}$

From stoichiometry, we have:
Equivalents of $C r_{2} O_{7}^{2 -}$ = equivalents of ABD
$1.68 \times 10^{- 3} = 3.26 \times 10^{- 3} \times x$
Solving, we get $x = 3$ .
Hence, the new oxidation number is: 3-n

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An element A in a compound ABD has oxidation number A^n-. It is oxidised by $C r_{2} O_{7}^{-} 2$ in acid medium. In the experiment 1.68 $\times$ $10^{-} 3$ x moles of $K_{2} C r_{2} O_{7}$ were used for 3.26 $\times$ $10^{-} 3$ moles of ABD. The new oxidation number of A after oxidation is: