Na₂S₄O₆
Let O.N. of S be x then 2 ×(+1) + 4× (x) +6 ×(–2) = 0
∴x= 2.5.

Let O.N. of Nitrogen be x.

2x – 5 = + 1 ⇒x=⁶⁄₂=3

CaOCl₂ or Ca(OCl)Cl is the mixed salt of Ca(OH)₂ with HCl and HOCl.

(NH₄)₂SO₄ is split into ions. \(NH_{4}^{+}\). Let O.N. of N be x
then, 1× (x) + 4 ×(+1) = 1∴ x = –3

Let oxidation state of Pin Ba(H₂PO₂)2 be x
∴(+ 2)+ 2 [2 (+ 1) + x + 2 (– 2)] =0
⇒2 + 2 [2 +x –4]= 0⇒2 + 2 [x –2]= 0
⇒x – 2 =– 1 ⇒x = + 1

(i) Oxidation state of element in its free state is zero.
(ii) Sum of oxidation states of all atoms in compound is zero.O.N. of S in S₂₈= 0; O.N. of S in S₂F₂= + 1;O.N. of S in H₂S = –2;

The given reaction can be written as

As shown above, one of the reacting species under goes reduction and other undergoes oxidation to give a same speices. These type of reactions are called comproportion reactions.

Sum of oxidation state of all atoms in neutral compound is zero.Let the oxidation state of iron in the complex ion
\([Fe(H_{2}O)_{5}(NO)]^{2+}SO_{4}^{2-}\); then x+ 5 × 0 + 0= + 2.
∴x= +2

Oxidation number of a compound must be 0. Using the values for A,B and C in the four options, we find that A₃(BC₄)₂ is the answer.Check :
(+2)3 + [(+5)+4(–2)]2 = 6 + (5–8)2 = 0

Hg which lies below the hydrogen in electrochemical series cannot displace hydrogen from acid.