Chemistry, asked by arjunbailwal, 13 days ago

p4---->PH3+HPO2- basic medium​

Answers

Answered by jeon36491
4

Answer:

The oxidation number of P decreases from 0 to -3 and increases from 0 to +2. Hence, P

4

is oxidizing as well as reducing agent.

During reduction, the total decrease in the oxidation number for 4 P atoms is 12.

During oxidation, total increase in the oxidation number for 4 P atoms is 4.

The increase in the oxidation number is balanced with decrease in the oxidation number by multiplying H

2

PO

2

with 3.

P

4

(s)+OH

(aq)→PH

3

(g)+3H

2

PO

2

(aq)

To balance O atoms, multiply OH

ions by 6.

P

4

(s)+6OH

(aq)→PH

3

(g)+3H

2

PO

2

(aq)

To balance H atoms, 3 water molecules are added to L.H.S and 3 hydroxide ions on R.H.S.

P

4

(s)+6OH

(aq)+3H

2

O(l)→PH

3

(g)+3H

2

PO

2

(aq)+3OH

(aq)

Subtract 3 hydroxide ions from both sides.

P

4

(s)+3OH

(aq)+3H

2

O(l)→PH

3

(g)+3H

2

PO

2

(aq)

Ion electron method:

The oxidation half reaction is P

4

(s)→H

2

PO

2

(aq).

The P atom is balanced.

P

4

(s)→4H

2

PO

2

(aq)

The oxidation number is balanced by adding 4 electrons on RHS.

P

4

(s)→4H

2

PO

2

(aq)+4e

The charge is balanced by adding 8 hydroxide ions on LHS.

P

4

(s)+8OH

(aq)→4H

2

PO

2

(aq)

The O and H atoms are balanced.

The reduction half reaction is P

4

(s)→PH

3

(g).

The oxidation number is balanced by adding 12 eelctrons on LHS.

P

4

(s)+12e

→PH

3

(g)

The charge is balanced by adding 12 hydroxide ions on RHS.

P

4

(s)+12e

→PH

3

(g)+12OH

The oxidation half reaction is multiplied by 3 and the reduction half reaction is multiplied by 2.

The half reactions are then added to obtain balanced chemical equation.

P

4

(s)+3OH

(aq)+3H

2

O(l)→PH

3

(g)+3H

2

PO

2

(aq)

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