Question

during electrolysis of AgNO3 loss of Ag in the anode compartment was 0.589g in a voltmeter connected in series 1.259g Ag was deposited.Find transport number of Ag+ and NO3-ions

Answer 1

Answer:

After electrolysis:

∵20.09g of anodic solution contained 0.06227 g of AgNO

3

∴ Mass of water in solution =20.09−0.06227=20.02773g

Thus, 20.02773gH

2

O has 0.06277 g AgNO

3

=

170

0.06227

equivalentAgNO

3

=0.0003663equivalentAgNO

3

or Ag

+

Before Electrolysis:

∵10.0g of solution contained 0.01788 g AgNO

3

∴ Mass of water in solution =10−0.01788=9.98212g

Thus, 9.98212 g water has =0.01788 gAgNO

3

=

170

0.01788

eq. AgNO

3

∴20.02773g water has =

170×9.98212

0.01788×20.02773

eq. AgNO

3

=0.000211 equivalent of AgNO

3

or Ag

+

Thus, increase in concentration of Ag

+

during electrolysis

=0.0003663−0.000211

=0.0001553 equivalent

Also, Mass of Cu deposited in coulometer =0.009479 g

∴ Equivalent of Cu deposited in coulometer =

31.8

0.009479

∴ Equivalent of Cu deposited or actual increase around anodic solution

=0.0002981 eq.

(Since, equal equivalents are discharged at either electrode)

Since, Ag

+

had migrated from anode, which brings a fall in concentration around anode but due to attacked electrodes, (i.e., Ag in AgNO

3

), apparent increase is noticed.

Thus, fall in concentration of Ag

+

around anode

= Actual increase which would have occur around anode - Apparent increase in Ag

+

around anode

=0.0002981−0.0001553

=0.0001428 equivalent of Ag

+

∴ Transport no. of t

Ag

+

=

Eq. ofCu

+

deposited in coulometer

Eq. ofAg

+

lost in anodic cell

=

0.0002981

0.0001428

t

Ag

+

=0.479≈5

Now, t

Ag

+

+l

NO

3

−

=1

∴t

NO

3

−

=1−0.4792=0.521≈5

Answer

Answer 2

The transport of Ag+ and NO3- ions is 0.5 which is same.

Given:

Ag deposited at the cathode is 1.259g

To find:

Transport number of Ag+ and NO3- ions.

Solution:

Given in the question,

Amount of Ag deposited  = 1.259g

We know,

Molar mass of Ag = 107.87 g/mol,

Number of moles of Ag deposited =$\frac{ 1.259g }{ 107.87 }$ g/mol

                                                         = 0.0117 mol

Balanced equation of AgNO3,

2 Ag+ + 2 e- -> 2 Ag (Cathode)

2 NO3- -> O2 + 2 e- (Anode)

From the Faraday's laws of electrolysis,

Amount of charge passed

= $\frac{mass of Ag deposited}{molar mass of Ag}$×Faraday's constant

= (1.259g / 107.87 g/ mol) × 96,485 C/mol

= 1,126.9 C

Now, to calculate the transport of Ag+ ions,

T(Ag+ )= (moles of Ag deposited) / (total moles of ions transported)

          = 0.0117 mol / (0.0117 mol + 0.0117 mol)

          = 0.5

Again, for NO3- ions,

TNO3- = (moles of NO3- oxidized) / (total moles of ions transported)

           = 0.0117 mol / (0.0117 mol + 0.0117 mol)

          = 0.5

Hence, the transport of Ag+ and NO3- ions is 0.5 which is same.

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