1 Answer

Idanzalz · Answer 1 · 2020-12-21T05:45:15+0000

Answer: The ratio of
in an aqueous solution is

Step-by-step explanation:

The substance having highest positive
E^o potential will always get reduced and will undergo reduction react.

Oxidation half reaction:
$Cu(s)\rightarrow Cu^(2+)(aq.)+2e^-;E^o_(Cu^(2+)/Cu)=+0.34V$

Reduction half reaction:
$Cu^+(aq.)+e^-\rightarrow Cu(s);E^o_(Cu^+/Cu)=+0.13V$ ( × 2)

Net cell reaction:
$2Cu^+(aq.)\rightarrow Cu^(2+)(aq.)+Cu(s)$

Substance getting oxidized always act as anode and the one getting reduced always act as cathode.

To calculate the
of the reaction, we use the equation:

E^o_(cell)=E^o_(cathode)-E^o_(anode)

E^o_(cell)=0.13-(0.34)=-0.21V

To calculate the EMF of the cell, we use the Nernst equation, which is:

$E_(cell)=E^o_(cell)-(0.059)/(n)\log ([Cu^(2+)])/([Cu^(+)]^2)$

Concentration of pure solids and liquids are taken as 1 in the ratio

where,

E_(cell) = electrode potential of the cell = +0.80 V

E^o_(cell) = standard electrode potential of the cell = -0.21 V

n = number of electrons exchanged = 2

([Cu^(2+)])/([Cu^+]^2) = Ratio of the concentration

Putting values in above equation, we get:

$0.80=-0.21-(0.059)/(2)* \log(([Cu^(2+)])/([Cu^(+)]^2))\\\\([Cu^(2+)])/([Cu^(+)]^2)=5.75* 10^(-35)M$

Hence, the ratio of
in an aqueous solution is

Please log in or register to add a comment.