YBa₂Cu₃O₇
3 + 2 × 2 + 3x– (2 ×7) = 0
3 + 4 +3x– 14 = 0
3x= 7
x = \(\frac{7}{3}\)

Higher the value of reduction potential higher will be the oxidising power whereas the lower the value of reduction potential higher will be the reducing power.

CrO₂Cl₂, \(MnO_{4}^{-}\)
; O.N. of Cr and Mn are +6 and +7 respectively.

The oxidation number of Cr in \(CrO_{4}^{2-}\) is x– 8 = – 2; x = + 6
The oxidation number of Cr is \(Cr(OH)_{4}^{-}\) is x– 4 = – 1 or x= + 3
Thus the oxidation number of Cr in the given reaction changes from +6 to + 3

O.N. of Cr in K₂Cr₂O₇: 2 + 2x– 14 = 0
2x= 12, x = 6
O.N. of Cr in K₂CrO₄: 2 + x– 8 = 0
x= 6
∴ Change in O.N. of Cr = 6 – 6 =0

(a) x + 5 × 0 = 0 ⇒ x = 0
(b) (x + 5 × 0 + 1) - 2 = 0 ⇒ x = +1
(c) 4 × (+3) + [3x + 18(-1)] = 0 ⇒ x = +2
(d) x + 4(-1) = -1 ⇒ x = +3

Let oxidation number of N in N₃H =x
3x+ 1= 0 or 3x= – 1
∴ x= –\(\frac{1}{3}\)