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Electrochemistry.

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Presentation on theme: "Electrochemistry."— Presentation transcript:

1 Electrochemistry

2 Electrochemistry Terminology #1
Oxidation – A process in which an element attains a more positive oxidation state Na(s)  Na+ + e- Reduction – A process in which an element attains a more negative oxidation state Cl2 + 2e-  2Cl-

3 Electrochemistry Terminology #2
An old memory device for oxidation and reduction goes like this… LEO says GER Lose Electrons = Oxidation Gain Electrons = Reduction

4 Electrochemistry Terminology #3
Oxidizing agent The substance that is reduced is the oxidizing agent Reducing agent The substance that is oxidized is the reducing agent

5 Electrochemistry Terminology #4
Anode The electrode where oxidation occurs Cathode The electrode where reduction occurs Memory device: Reduction at the Cathode

6 Table of Reduction Potentials
Measured against the Standard Hydrogen Electrode

7 Measuring Standard Electrode Potential
Potentials are measured against a hydrogen ion reduction reaction, which is arbitrarily assigned a potential of zero volts.

8 Galvanic (Electrochemical) Cells
Spontaneous redox processes have: A positive cell potential, E0 A negative free energy change, (-G)

9 Zn - Cu Galvanic Cell From a table of reduction potentials:
Zn2+ + 2e-  Zn E = -0.76V Cu2+ + 2e-  Cu E = +0.34V

10 Zn - Cu Galvanic Cell Zn  Zn2+ + 2e- E = +0.76V
The less positive, or more negative reduction potential becomes the oxidation… Cu2+ + 2e-  Cu E = +0.34V Zn  Zn2+ + 2e E = +0.76V Zn + Cu2+  Zn2+ + Cu E0 = V

11 Line Notation Zn(s) | Zn2+(aq) || Cu2+(aq) | Cu(s) | || |
An abbreviated representation of an electrochemical cell Zn(s) | Zn2+(aq) || Cu2+(aq) | Cu(s) Anode material Anode solution Cathode solution Cathode material | || |

12 Calculating G0 for a Cell
G0 = -nFE0 n = moles of electrons in balanced redox equation F = Faraday constant = 96,485 coulombs/mol e- Zn + Cu2+  Zn2+ + Cu E0 = V

13 The Nernst Equation R = 8.31 J/(molK) T = Temperature in K
Standard potentials assume a concentration of 1 M. The Nernst equation allows us to calculate potential when the two cells are not 1.0 M. R = 8.31 J/(molK) T = Temperature in K n = moles of electrons in balanced redox equation F = Faraday constant = 96,485 coulombs/mol e-

14 Nernst Equation Simplified
At 25 C (298 K) the Nernst Equation is simplified this way:

15 Equilibrium Constants and Cell Potential
At equilibrium, forward and reverse reactions occur at equal rates, therefore: The battery is “dead” The cell potential, E, is zero volts Modifying the Nernst Equation (at 25 C):

16 Calculating an Equilibrium Constant from a Cell Potential
Zn + Cu2+  Zn2+ + Cu E0 = V

17 Both sides have the same components but at different concentrations.
??? Concentration Cell Both sides have the same components but at different concentrations. Step 1: Determine which side undergoes oxidation, and which side undergoes reduction.

18 Both sides have the same components but at different concentrations.
??? Concentration Cell Both sides have the same components but at different concentrations. Anode Cathode The 1.0 M Zn2+ must decrease in concentration, and the 0.10 M Zn2+ must increase in concentration Zn2+ (1.0M) + 2e-  Zn (reduction) Zn  Zn2+ (0.10M) + 2e- (oxidation) Zn2+ (1.0M)  Zn2+ (0.10M)

19 Both sides have the same components but at different concentrations.
Concentration Cell ??? Concentration Cell Both sides have the same components but at different concentrations. Anode Cathode Step 2: Calculate cell potential using the Nernst Equation (assuming 25 C). Zn2+ (1.0M)  Zn2+ (0.10M)

20 Nernst Calculations Zn2+ (1.0M)  Zn2+ (0.10M)

21 Electrolytic Processes
Electrolytic processes are NOT spontaneous. They have: A negative cell potential, (-E0) A positive free energy change, (+G)

22 Electrolysis of Water In acidic solution Anode rxn: Cathode rxn:
-1.23 V Cathode rxn: -0.83 V -2.06 V

23 Electroplating of Silver
Anode reaction: Ag  Ag+ + e- Cathode reaction: Ag+ + e-  Ag Electroplating requirements: 1. Solution of the plating metal 2. Anode made of the plating metal 3. Cathode with the object to be plated 4. Source of current

24 Solving an Electroplating Problem
Q: How many seconds will it take to plate out 5.0 grams of silver from a solution of AgNO3 using a 20.0 Ampere current? Ag+ + e-  Ag 5.0 g 1 mol Ag 1 mol e- C 1 s 1 mol e- 20.0 C g 1 mol Ag = 2.2 x 102 s

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