A galvanic cell based on these half-reactions is set up under standard conditions where each solutions is 1.00 L and each electrode weighs exactly 100.0 g. How much will the Cd electrode weigh when the - QAmmunity.org

A galvanic cell based on these half-reactions is set up under standard conditions where each solutions is 1.00 L and each electrode weighs exactly 100.0 g. How much will the Cd electrode weigh when the

asked May 7, 2021 232k views

2 Answers

Complete Question

$Fe^(2+) + 2e^-----> Fe \ \ \ \ \ \ \ \ \ \ \ \ \ \ \ \ \ E^0_(red) = - 0.441 V$

$Cd^(2+) + 2e^- -----> Cd \ \ \ \ \ \ \ \ \ \ \ \ \ \ E^0_(red) = -0.403V$

A galvanic cell based on these half-reactions is set up under standard conditions where each solutions is 1.00 L and each electrode weighs exactly 100.0 g. How much will the Cd electrode weigh when the non-standard potential of the cell is 0.03305 V?

Answer:

The mass is M= 117.37g

Step-by-step explanation:

The overall reaction is as follows

Cd^(2+) + Fe <========> Fe^(2+) + Cd

The reaction is this way because the potential of
$Cd^(2+) \ reducing \ to \ Cd$ is higher than the potential of
$Fe^(2+) \ reducing \ to \ Fe$ so the the Fe would be oxidized and
Cd^(2+) would be reduced

At equilibrium the rate constant of the reaction is

$Q = (concentration \ of \ product )/(concentration \ of reactant )$

= ([Fe^(2+)[Cd]])/([Cd^(2+)][Fe])

The Voltage of the cell
E_(cell) = E_(Cd^(2+)/Cd ) + E_(Fe^(2+) /Fe)

Substituting the given values into the equation

E_(cell) = -0.403 -(-0.441)

= 0.038V

The voltage of the cell at any point can be calculated using the equation

E = E_(cell) - (0.059)/(n_e) Q

Where
$n_e \ is \ the \ number\ of\ electron$

Substituting for Q

E = E_(cell) - (0.059)/(n_e) ([Fe^(2+)[Cd]])/([Cd^(2+)][Fe])

When E = 0.03305 V

E = E_(cell) - (0.59)/(n_e) (Fe^(2+))/(Cd^(2+))

Since we are considering the Cd electrode the equation becomes

E= E_(cell) - (0.059)/(n_e) [(1)/(Cd^(2+)) ]

Substituting values and making [
Cd^(2+) ] the subject

$[Cd^(2+)] =\frac{1}{e^{[(0.03305- 0.038)/((0.059 )/(2) )] }}$

= 0.8455M

Given from the question that the volume is 1 Liter

The number of mole = concentration * volume

= 0.8455 * 1

= 0.8455 moles

At the standard state the concentration of
Cd^(2+) is =1 mole /L

Hence the amount deposited on the Cd electrode would be

= Original amount - The calculated amount

= 1 - 0.8455

= 0.1545 moles

The mass deposited is mathematically represented as

$mass = mole * molar \ mass$

The Molar mass of Cd
= 112.41 g/mol

Mass
= 0.1545 *112.41

= 17.37g

Hence the total mass of the electrode is = standard mass + calculated mass

M= 100+ 17.37

M= 117.37g

Arijoon answered May 11, 2021

8.4k points

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