Question
Question: Anodic oxidation of ammonium hydrogen sulphate produces ammonium persulphate. \(\begin{aligned} ...
Anodic oxidation of ammonium hydrogen sulphate produces ammonium persulphate.
NH4HSO4→NH4SO4−+H+2NH4SO4−→(NH4)2S2O8+2e− (anodic oxidation)2H++2e−→H2 (Cathodic reduction)
Hydrolysis of ammonium persulphate forms H2O2.
(NH4)2S2O8+2H2O→2NH4HSO4+H2O2
Current efficiency in the electrolysis process is 60. Calculate the amount of current required to produce 85g of H2O2 per hour.
Hydrolysis reaction shows 100 yield.
Solution
It is based on the concept of the Faraday’s first law of electrolysis and the amount of current required can be easily calculated by applying the formula as: I=t×Zw×96500 obtained from the Faraday’s law of electrolysis. Now you can easily solve it.
Complete step by step answer:
This is based on Faraday's first law of electrolysis. The Faraday’s first law of electrolysis states that the amount of substance deposited or liberated at any electrode is directly proportional to the quantity of electricity passed through the electrolytic solution.
If w gram of the substance is deposited on passing Q coulombs of electricity, then;
w α Qw=ZQ equation (1)
Here, Z is known as the electrochemical equivalent .
If current of I amperes is passed for t seconds, then;
Q=I×t
Put this value in equation (1) we get;
w=Z×I×t
Here, electricity is in coulomb , we will convert it into faraday as;
w=96500Z×I×t (1F=9650C) Equation (2)
Now, considering the statement;
As we have to find the current, so equation (2) changes as;
I=t×Zw×96500 Equation (3)
In the statement we have been asked to find the current required to produce 85g of H2O2 , then first we have to find the mass of (NH4)2S2O8 required to produce 85g of H2O2.
Now considering the above given reaction ;
(NH4)2S2O8+2H2O→2NH4HSO4+H2O2
If 34g of H2O2 is produced by =228g of (NH4)2S2O8
Then;
1gof H2O2is produced by =34228g of (NH4)2S2O8
And
85gof H2O2is produced by =34228×85g=570g of (NH4)2S2O8
So, w=570g
t= 1 hour =3600 seconds (given)
Equivalent weight i.e. Z is found by dividing the atomic number with the number of electrons required to reduce the cation.
So, will consider the reaction as;
2NH3SO4−→(NH4)2S2O8+2e−
Atomic weight of (NH4)2S2O8=228g
No. of electrons =2
So, Z=2228=114
Now , put these all values in equation (3), we get;
I=3600×114570×96500 = 134.02 ampere
Current efficiency = 60
Then the amount of current required=60100×134.02=223.379 ampere
So, thus the amount of current required to produce 85g of H2O2 per hour is 223.379 ampere.
Note: Always keep in mind to change the units of the species given and always take the standard units. If time is given in seconds, then simply take in seconds and if it is given in hours or minutes, then first convert it into seconds and then apply it in the formula and also for the rest of the units too.