Hydrogen MCQ Questions & Answers in Inorganic Chemistry | Chemistry

The statues and paintings coated with white lead get blackened due to action of $${H_2}S$$  present in traces in atmosphere. When these are treated with $${H_2}{O_2},PbS$$    is oxidised to $$PbS{O_4}$$  which is colourless or white.
$$\mathop {PbS}\limits_{{\text{black}}} + 4{H_2}{O_2} \to \mathop {PbS{O_4}}\limits_{{\text{white}}} + 4{H_2}O$$

Chlorine has lone pair which it can donate to form coordinate bond, while hydrogen cannot.

$$N$$ and $$B$$ belong to $$p$$ - block and since the electronegativity difference between these elements and $$H$$ is very less, they form covalent hydrides.

Only one water molecule which is outside the coordination sphere is hydrogen bonded. Other four molecules of $${H_2}O$$  are coordinated.
$${\left[ {Cu{{\left( {{H_2}O} \right)}_4}} \right]^{2 + }}SO_4^{2 - } \cdot {H_2}O$$

$${H_2}{O_2}$$  acts as a reducing agent only in presence of strong oxidising agents ( i.e., $$MnO_4^ - $$   ) in acidic as well as alkaline medium.
$$2KMn{O_4} + 3{H_2}S{O_4} + 5{H_2}{O_2} \to {K_2}S{O_4} + 2MnS{O_4} + 8{H_2}O + 5{O_2}$$

$$\eqalign{ & 2RCOONa + M{g^{2 + }} \to \mathop {{{\left( {RCOO} \right)}_2}}\limits_{{\text{Insoluble}}} Mg + 2N{a^ + } \cr & 2RCOONa + C{a^{2 + }} \to \mathop {{{\left( {RCOO} \right)}_2}}\limits_{{\text{Insoluble}}} Ca + 2N{a^ + } \cr} $$

As $${H_2}{O_2}$$  is loosing electrons, so it is acting as reducing agent.

As $$N{a^ + }\,ions$$   in sodium zeolite are replaced by $$C{a^{2 + }}$$  and $$M{g^{2 + }}\,ions$$   present in hard water, these two ions will not be present.

$$Ca{\left( {OH} \right)_2}$$  is used for the softening of temporary hard water.
\[Ca{{\left( OH \right)}_{2}}\left( aq \right)\xrightarrow{C{{O}_{2}}}\underset{\text{cloudiness}}{\mathop{CaC{{O}_{3}}\left( s \right)}}\,+{{H}_{2}}O\left( l \right)\]

Formation of $$N{H_3}$$  by reaction of hydrogen and nitrogen is known as Haber's process.