Q4.63P

Question

8NH3(g)+6NO2(g)7N2(g)+12H2O(l)Identify the oxidizing agent and the reducing agent in the following reaction, and explain your answer:


Step-by-Step Solution

Verified
Answer

 

Answer: You need to identify the oxidizing agent and reducing agent of the given reaction.

1Step 1: Oxidation state of nitrogen in NH 3


Oxidation state of Hydrogen attached to non-metal is +1.

Let, oxidation state of nitrogen in NH3 is x.

No you can write,

 x+3+1=0x=-3

2Step 2: Oxidation state of nitrogen in NO 2


Oxidation state of Oxygen attached to non-metal is -2.

Let, oxidation state of nitrogen in NO2 is y.

No you can write,

 y+2-2=0y=+4

3Step 3: Oxidation state of nitrogen in N 2


Oxidation state of nitrogen in N2 is 0.

4Step 4: Conclusion


In the given reaction

8NH3g+6NO2g7N2g+12H2Ol

The oxidation state of nitrogen in NH3 is -3 which increases to 0 in N2. Therefore, NH3 undergoes oxidation in this given reaction. Hence, it acts as a reducing agent.

The oxidation state of nitrogen in NO2 is +4 which reduces to 0 in N2. Therefore, NO2 undergoes reduction in this given reaction. Hence, it acts as an oxidizing agent.