1 21 electrochemistry. 2 chapter goals 1.electrical conduction 2.electrodes electrolytic cells 3.the...
TRANSCRIPT
2
Chapter Goals
1. Electrical Conduction2. Electrodes
Electrolytic Cells3. The Electrolysis of Molten Sodium Chloride
(the Downs Cell) 4. The Electrolysis of Aqueous Sodium Chloride5. The Electrolysis of Aqueous Sodium Sulfate6. Counting Electrons: Coulometry and Faraday’s
Law of Electrolysis7. Commercial Applications of Electrolytic Cells
3
Chapter GoalsVoltaic or Galvanic Cells
8. The Construction of Simple Voltaic Cells9. The Zinc-Copper Cell10. The Copper-Silver Cell
Standard Electrode Potentials11. The Standard Hydrogen Electrode12. The Zinc-SHE Cell13. The Copper-SHE Cell14. Standard Electrode Potentials15. Uses of Standard Electrode Potentials
4
Chapter Goals
16. Standard Electrode Potentials for Other Half-Reactions
17. Corrosion 18. Corrosion Protection
Effect of Concentrations (or Partial Pressures) on Electrode Potentials
19. The Nernst Equation20. Using Electrohemical Cells to Determine
Concentrations
21. The Relationship of Eocell to Go and K
5
Chapter Goals
Primary Voltaic Cells
22. Dry Cells
Secondary Voltaic Cells
23. The Lead Storage Battery
24. The Nickel-Cadmium (Nicad) Cell
25. The Hydrogen-Oxygen Fuel Cell
6
Electrochemistry
• Electrochemical reactions are oxidation-reduction reactions.
• The two parts of the reaction are physically separated.
– The oxidation reaction occurs in one cell.– The reduction reaction occurs in the other cell.
7
Electrochemistry
There are two kinds electrochemical cells.
1. Electrochemical cells containing in nonspontaneous chemical reactions are called electrolytic cells.
2. Electrochemical cells containing spontaneous chemical reactions are called voltaic or galvanic cells.
8
Electrical Conduction• Metals conduct electric currents well in a
process called metallic conduction.
• In metallic conduction there is electron flow with no atomic motion.
• In ionic or electrolytic conduction ionic motion transports the electrons.– Positively charged ions, cations, move toward the
negative electrode.– Negatively charged ions, anions, move toward the
positive electrode.
9
Electrodes
• The following convention for electrodes is correct for either electrolytic or voltaic cells:
• The cathode is the electrode at which reduction occurs.
• The cathode is negative in electrolytic cells and positive in voltaic cells.
• The anode is the electrode at which oxidation occurs.
• The anode is positive in electrolytic cells and negative in voltaic cells.
10
Electrodes
• Inert electrodes do not react with the liquids or products of the electrochemical reaction.
• Two examples of common inert electrodes are graphite and platinum.
11
Electrolytic Cells
• Electrical energy is used to force nonspontaneous chemical reactions to occur.
• The process is called electrolysis.
• Two examples of commercial electrolytic reactions are:
1. The electroplating of jewelry and auto parts.
2. The electrolysis of chemical compounds.
12
Electrolytic Cells
• Electrolytic cells consist of:1. A container for the reaction mixture.
2. Two electrodes immersed in the reaction mixture.
3. A source of direct current.
13
The Electrolysis of Molten Sodium Chloride• Liquid Sodium is produced at one
electrode.– Indicates that the reaction Na+
() + e- Na(s) occurs at this electrode.
– Is this electrode the anode or cathode?
• Gaseous chlorine is produced at the other electrode.– Indicates that the reaction 2 Cl- Cl2(g) + 2 e-
occurs at this electrode.– Is this electrode the anode or cathode?
15
The Electrolysis of Molten Sodium Chloride• The nonspontaneous redox reaction that occurs is:
Na 2 Cl Na 2 Cl 2 reaction Cell
Na e Na2reaction Cathode
e 2 Cl Cl 2 reaction Anode
g2-
-
-2(g)
-
16
The Electrolysis of Molten Sodium Chloride• In all electrolytic cells, electrons are
forced to flow from the positive electrode (anode) to the negative electrode (cathode).
17
The Electrolysis of Aqueous Sodium Chloride• In this electrolytic cell, hydrogen gas is produced at one electrode.
– The aqueous solution becomes basic near this electrode.– What reaction is occurring at this electrode? You do it!You do it!
• Gaseous chlorine is produced at the other electrode.– What reaction is occurring at this electrode? You do it!You do it!
• These experimental facts lead us to the following nonspontaneous electrode reactions:
The Electrolysis of Aqueous Sodium Chloride
18
ed!electrolyz isr that wateNote ion.spectator a is K
OH 2Cl H OH 2 Cl 2 reaction Cell
OH 2 H e 2 OH 2 reaction Cathode
e 2 Cl Cl 2 reaction Anode
-g2g22
-
-g2
-2
-2(g)
-
20
The Electrolysis of Aqueous Sodium Sulfate• In this electrolysis, hydrogen gas is produced at
one electrode.– The solution becomes basic near this electrode.– What reaction is occurring at this electrode?
You do it!
• Gaseous oxygen is produced at the other electrode– The solution becomes acidic near this electrode.– What reaction is occurring at this electrode?
You do it!
• These experimental facts lead us to the following electrode reactions:
23
Electrolytic Cells
• In all electrolytic cells the most easily reduced species is reduced and the most easily oxidized species is oxidized.
24
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis• Faraday’s Law - The amount of substance undergoing chemical
reaction at each electrode during electrolysis is directly proportional to the amount of electricity that passes through the electrolytic cell.
• A faraday is the amount of electricity that reduces one equivalent of a species at the cathode and oxidizes one equivalent of a species at the anode.
-23 e 106.022y electricit offaraday 1
25
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis• A coulomb is the amount of charge that passes
a given point when a current of one ampere (A) flows for one second.
• 1 amp = 1 coulomb/second
coulombs 487,96e 106.022faraday 1 -23
26
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis• Faraday’s Law states that during electrolysis, one faraday
of electricity (96,487 coulombs) reduces and oxidizes, respectively, one equivalent of the oxidizing agent and the reducing agent.– This corresponds to the passage of one mole of electrons
through the electrolytic cell.
-23
-23
e 106.022 of lossagent reducing of equivalent 1
e 106.022 ofgain agent oxidizing of equivalent 1
27
Cathode: Pd + 2e Pd
1 mol 2 mol 1 mol
106 g 2(96,500) 106 g
3.20 amp = 3.20
g = 30.0 min60 smin
Cs
g Pd2 96,500 C
g Pd
2+ - 0
Cs
?.
.3 20 106
316
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis• Example 21-1: Calculate the mass of palladium
produced by the reduction of palladium (II) ions during the passage of 3.20 amperes of current through a solution of palladium (II) sulfate for 30.0 minutes.
28
2STP2STP
2STP2STP
STP
-+g22
O mL 334or O L 334.0
C 96,5004
O L 4.22
s
C 20.3
min
s 60min 30.0 O L ?
C 96,5004 22.4L
mol 4 mol 4 mol 1 mol 2
4e+ 4H + O OH 2 :Anode
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis• Example 21-2: Calculate the volume of oxygen
(measured at STP) produced by the oxidation of water in example 21-1.
29
Commercial Applications of Electrolytic Cells
Electrolytic Refining and Electroplating of Metals
• Impure metallic copper can be purified electrolytically to 100% pure Cu.– The impurities commonly include some active metals
plus less active metals such as: Ag, Au, and Pt.
• The cathode is a thin sheet of copper metal connected to the negative terminal of a direct current source.
• The anode is large impure bars of copper.
30
Commercial Applications of Electrolytic Cells• The electrolytic solution is CuSO4 and H2SO4
• The impure Cu dissolves to form Cu2+.• The Cu2+ ions are reduced to Cu at the cathode.
Anode impure Cu Cu 2e
Cathode very pure Cu 2e Cu
Net rxn. No net rxn.
s0
aq2
aq2+
s0
31
Commercial Applications of Electrolytic Cells• Any active metal impurities are oxidized to cations that are more
difficult to reduce than Cu2+.
– This effectively removes them from the Cu metal.
metals active
otherfor forth so And
2eFeFe
2eZnZn20
20
32
Commercial Applications of Electrolytic Cells• The less active metals are not oxidized and
precipitate to the bottom of the cell.• These metal impurities can be isolated and
separated after the cell is disconnected.• Some common metals that precipitate include:
Ag, Au, Pt, Pd
Se, Te
33
Voltaic or Galvanic Cells
• Electrochemical cells in which a spontaneous chemical reaction produces electrical energy.
• Cell halves are physically separated so that electrons (from redox reaction) are forced to travel through wires and creating a potential difference.
• Examples of voltaic cells include:
batteries calculator andComputer
batteries Flashlight
batteries Auto
34
The Construction of Simple Voltaic Cells• Voltaic cells consist of two half-cells which
contain the oxidized and reduced forms of an element (or other chemical species) in contact with each other.
• A simple half-cell consists of:– A piece of metal immersed in a solution of its ions.– A wire to connect the two half-cells.– And a salt bridge to complete the circuit, maintain
neutrality, and prevent solution mixing.
36
The Zinc-Copper Cell
• Cell components for the Zn-Cu cell are:1. A metallic Cu strip immersed in 1.0 M copper (II) sulfate.
2. A metallic Zn strip immersed in 1.0 M zinc (II) sulfate.
3. A wire and a salt bridge to complete circuit
• The cell’s initial voltage is 1.10 volts
38
The Zinc-Copper Cell
V10.1Eith reaction w sspontaneou a is This
CuZnCu Znreaction cell Overall
Cue2Cu reaction Cathode
e2Znn Zreaction Anode
0cell
0+2+20
0+2
+20
• In all voltaic cells, electrons flow spontaneously from the negative electrode (anode) to the positive electrode (cathode).
39
The Zinc-Copper Cell
• There is a commonly used short hand notation for voltaic cells.– The Zn-Cu cell provides a good example.
Zn/Zn2+(1.0 M) || Cu2+(1.0 M)/Cu
species (and concentrations)in contact with electrode surfaces
electrode surfaces
salt bridge
40
The Copper - Silver Cell
• Cell components:1. A Cu strip immersed in 1.0 M copper (II) sulfate.
2. A Ag strip immersed in 1.0 M silver (I) nitrate.
3. A wire and a salt bridge to complete the circuit.
• The initial cell voltage is 0.46 volts.
42
The Copper - Silver Cell
V46.0Eith reaction w sspontaneou a is This
Ag 2+CuAg 2+Cu reaction cell Overall
Age+Ag2 reaction Cathode
2eCuCu reaction Anode
0cell
0+2+0
0-+
20
• Compare the Zn-Cu cell to the Cu-Ag cell– The Cu electrode is the cathode in the Zn-Cu cell.– The Cu electrode is the anode in the Cu-Ag cell.
• Whether a particular electrode behaves as an anode or as a cathode depends on what the other electrode of the cell is.
43
The Copper - Silver Cell
• These experimental facts demonstrate that Cu2+ is a stronger oxidizing agent than Zn2+.
– In other words Cu2+ oxidizes metallic Zn to Zn2+.• Similarly, Ag+ is is a stronger oxidizing agent than Cu2+.
– Because Ag+ oxidizes metallic Cu to Cu 2+.• If we arrange these species in order of increasing strengths, we see that:
agent reducing asstrength
Ag>Cu>Zn
agent oxidizing asstrength
Ag<Cu<Zn
000
++2+2
44
Standard Electrode Potential
• To measure relative electrode potentials, we must establish an arbitrary standard.
• That standard is the Standard Hydrogen Electrode (SHE).– The SHE is assigned an arbitrary voltage of 0.000000… V
46
The Zinc-SHE Cell• For this cell the components are:
1. A Zn strip immersed in 1.0 M zinc (II) sulfate.2. The other electrode is the Standard Hydrogen Electrode.3. A wire and a salt bridge to complete the circuit.
• The initial cell voltage is 0.763 volts.
48
The Zinc-SHE Cell
V 763.0E H+Zn2H+Znreaction Cell
V 0.000 He 2+H 2reaction Cathode
V 0.763 e 2+Zn Znreaction Anode
E
0cellg2
+2+0
g2-+
-+20
0
• The cathode is the Standard Hydrogen Electrode.– In other words Zn reduces H+ to H2.
• The anode is Zn metal.– Zn metal is oxidized to Zn2+ ions.
49
The Copper-SHE Cell
• The cell components are:1. A Cu strip immersed in 1.0 M copper (II) sulfate.
2. The other electrode is a Standard Hydrogen Electrode.
3. A wire and a salt bridge to complete the circuit.
• The initial cell voltage is 0.337 volts.
51
The Copper-SHE Cell
V 337.0E Cu+2HCu+H reaction Cell
V 0.337 Cu2e+Cureaction Cathode
V 0.000 e 2+H 2 H reaction Anode
E
0cell
0++2g2
0-+2
-+g2
0
• In this cell the SHE is the anode– The Cu2+ ions oxidize H2 to H+.
• The Cu is the cathode.– The Cu2+ ions are reduced to Cu metal.
52
Uses of Standard Electrode Potentials• Electrodes that force the SHE to act as an anode are
assigned positive standard reduction potentials.
• Electrodes that force the SHE to act as the cathode are assigned negative standard reduction potentials.
• Standard electrode (reduction) potentials tell us the tendencies of half-reactions to occur as written.
• For example, the half-reaction for the standard potassium electrode is:
V -2.925=E K e K 00
The large negative value tells us that this reaction will occur only under extreme conditions.
53
Uses of Standard Electrode Potentials• Compare the potassium half-reaction to fluorine’s half-
reaction:
• The large positive value denotes that this reaction occurs readily as written.
• Positive E0 values denote that the reaction tends to occur to the right.– The larger the value, the greater the tendency to occur to the
right.
• It is the opposite for negative values of Eo.
F + 2 e 2 F E = +2.87 V20 - - 0
54
Uses of Standard Electrode Potentials• Use standard electrode potentials to
predict whether an electrochemical reaction at standard state conditions will occur spontaneously.
• Example 21-3: Will silver ions, Ag+, oxidize metallic zinc to Zn2+ ions, or will Zn2+ ions oxidize metallic Ag to Ag+ ions?
• Steps for obtaining the equation for the spontaneous reaction.
55
Uses of Standard Electrode Potentials1. Choose the appropriate half-reactions from a table of standard
reduction potentials.2. Write the equation for the half-reaction with the more positive E0
value first, along with its E0 value.3. Write the equation for the other half-reaction as an oxidation with
its oxidation potential, i.e. reverse the tabulated reduction half-reaction and change the sign of the tabulated E0.
4 Balance the electron transfer.5 Add the reduction and oxidation half-reactions and their potentials.
This produces the equation for the reaction for which E0cell is
positive, which indicates that the forward reaction is spontaneous.
56
Uses of Standard Electrode Potentials
V +1.5662=E Zn+2AgZn+2Agreaction Cell
V) (-0.7628- )e 2 + Zn1(Zn Oxidation
V 0.7994+ )Age+2(Ag Reduction
E
0cell
+200+
-+2
0-+
0
57
Electrode Potentials for Other Half-Reactions• Example 21-4: Will permanganate ions,
MnO4-, oxidize iron (II) ions to iron (III)
ions, or will iron (III) ions oxidize manganese(II) ions to permanganate ions in acidic solution?
• Follow the steps outlined in the previous slides.
• Note that E0 values are not multiplied by any stoichiometric relationships in this procedure.
58
Electrode Potentials for Other Half-Reactions• Example 21-4: Will permanganate ions, MnO4
-, oxidize iron (II) ions to iron (III) ions, or will iron (III) ions oxidize manganese(II) ions to permanganate ions in acidic solution?
• Thus permanganate ions will oxidize iron (II) ions to iron (III) and are reduced to manganese (II) ions in acidic solution.
V +0.74=E 5Fe+O4HMn8HFe5MnO reaction Cell
V) 0.771(- )e + Fe5(Fe Oxdation
V 1.51 + O)4HMn5e+8H1(MnO Reduction
E
0cell
+32
22-4
-+32
22--
4
0
59
Electrode Potentials for Other Half-Reactions• Example 21-5: Will nitric acid, HNO3, oxidize
arsenous acid, H3AsO3, in acidic solution? The reduction product of HNO3 is NO in this reaction.
You do it!
V +0.38=E 6HAsO3H+OH2NO2HAsOH32NO
6HAsO3H+O4H2NOOH38HAsOH32NO reaction Cell
V) 0.58(- )2e + 2HAsOHOHAsO3(H Oxidation
V 0.96 + O)2HNO3e+4H2(NO Reduction
E
0cell43233
-3
432233-3
-43233
2--
3
0
60
Corrosion
• Metallic corrosion is the oxidation-reduction reactions of a metal with atmospheric components such as CO2, O2, and H2O.
points. exposedat rapidly occursreaction The
reaction overall OFe 2O 3+Fe 4 3202
0
61
Corrosion Protection
• Some examples of corrosion protection.1. Plate a metal with a thin layer of a less active
(less easily oxidized) metal.
"Tin plate" for steel.
62
Corrosion Protection
2. Connect the metal to a sacrificial anode, a piece of a more active metal.
anodes. lsacrificia as
exterior on the Zn and Mg
have hulls ship and pipes Soil
64
Corrosion Protection
3. Allow a protective film to form naturally.
foil. Al ofexterior on film
nt transparehard, a forms OAl
OAl 2O 3+Al 4
32
3202
0
65
Corrosion Protection
4 Galvanizing, the coating of steel with zinc, provides a more active metal on the exterior.
rust. tobegins Fe before oxidized
bemust Zn ofcoat thin The
66
Corrosion Protection
5. Paint or coat with a polymeric material such as plastic or ceramic.
Steel bathtubs are coated with ceramic.
67
Effect of Concentrations (or Partial Pressures) on Electrode Potentials
The Nernst Equation
• Standard electrode potentials, those compiled in appendices, are determined at thermodynamic standard conditions.
• Reminder of standard conditions. 1.00 M solution concentrations
1.00 atm of pressure for gases
All liquids and solids in their standard thermodynamic states.
Temperature of 250 C.
68
The Nernst Equation
• The value of the cell potentials change if conditions are nonstandard.
• The Nernst equation describes the electrode potentials at nonstandard conditions.
• The Nernst equation is:
69
The Nernst Equation
quotientreaction =Q
e mol J/V 487,96
VCJ 1)e C/mol (96,487=faraday the=F
ed transferrelectrons ofnumber =n
Kin etemperatur=TK mol
J 8.314=constant gas universal=R
conditions standardunder potentialE
interest ofcondition under potential=E
Q log nF
2.303RT-E=E
-
.-
0
0
70
The Nernst Equation
• Substitution of the values of the constants into the Nernst equation at 25o C gives:
Q log n
0.0592-E=E Thus
0592.0e mol J/V 96,487
K 298314.8303.2
F
RT 2.303
0
-K mol
J
71
The Nernst Equation
• For this half-reaction:
• The corresponding Nernst equation is:
V +0.153=ECueCu 0-+2
E = E -
0.05921
log Cu
Cu0
+
2
72
The Nernst Equation
• Substituting E0 into the above expression gives:
• If [Cu2+] and [Cu+] are both 1.0 M, i.e. at standard conditions, then E = E0 because the concentration term equals zero.
E = 0.153 V -
0.05921
log Cu
Cu
+
2
E = 0.153 V -0.0592
1 log
11
74
The Nernst Equation
• Example 21-6: Calculate the potential for the Cu2+/ Cu+ electrode at 250C when the concentration of Cu+ ions is three times that of Cu2+ ions.
3Cu
Cu 3
Cu
Cu=Q
Cue +Cu
+2
+2
+2
+
-+2
75
The Nernst Equation
• Example 21-6: Calculate the potential for the Cu2+/ Cu+ electrode at 250C when the concentration of Cu+ ions is three times that of Cu2+ ions.
3 log 1
0.0592-V 0.153=E
Q log 1
0.0592-E=E 0
76
The Nernst Equation
• Example 21-6: Calculate the potential for the Cu2+/ Cu+ electrode at 250C when the concentration of Cu+ ions is three times that of Cu2+ ions.
V 0.125=E
V 0.0282-0.153=E
V 0.4770.0592-0.153V=E
3 log 1
0.0592-V 0.153=E
Q log 1
0.0592-E=E 0
78
The Nernst Equation
• Example 21-7: Calculate the potential for the Cu2+/Cu+ electrode at 250C when the Cu+ ion concentration is 1/3 of the Cu2+ ion concentration.
You do it!
333.0Cu
Cu 31
Cu
Cu=Q
Cue +Cu
+2
+2
+2
+
-+2
79
The Nernst Equation
• Example 21-7: Calculate the potential for the Cu2+/Cu+ electrode at 250C when the concentration of Cu+ ions is 1/3 that of Cu2+ ions.
31 log
1
0.0592-V 0.153=E
Q log 1
0.0592-E=E 0
80
The Nernst Equation
V 0.181=E
V 0.0282+0.153=E
V 0.477-0.0592-0.153V=E
31 log
1
0.0592-V 0.153=E
Q log 1
0.0592-E=E 0
81
The Nernst Equation
• Example 21-8: Calculate the electrode potential for a hydrogen electrode in which the [H+] is 1.0 x 10-3 M and the H2 pressure is 0.50 atmosphere.
5
232+
H
2-+
100.5Q
100.1
0.50
H
P=Q
He 2 + H 2
2
82
The Nernst Equation
• Example 21-8: Calculate the electrode potential for a hydrogen electrode in which the [H+] is 1.0 x 10-3 M and the H2 pressure is 0.50 atmosphere.
V 168.0E
699.52
0.05920E
105.0 log 2
0.0592-E=E 50
83
The Nernst Equation
• The Nernst equation can also be used to calculate the potential for a cell that consists of two nonstandard electrodes.
• Example 21-9: Calculate the initial potential of a cell that consists of an Fe3+/Fe2+ electrode in which [Fe3+]=1.0 x 10-2 M and [Fe2+]=0.1 M connected to a Sn4+/Sn2+ electrode in which [Sn4+]=1.0 M and [Sn2+]=0.10 M . A wire and salt bridge complete the circuit.
84
The Nernst Equation
• Calculate the E0 cell by the usual procedure.
V 62.0E SnFe 2SnFe 2reaction Cell
V 0.15- e 2+SnSn1 Oxidation
V 0.771 Fee+Fe2 Reduction
E
0cell
+4+2+2+3
-+4+2
+2+3
0
85
The Nernst Equation
• Substitute the ion concentrations into Q to calculate Ecell.
E = E -0.0592
2Q
= 0.62 V -0.0592
2
Fe Sn
Fe Sn
cell cell0
2 4
3 2
log
log
2
2
E = 0.62 V -0.0592
2cell log. .
. .
010 10
10 10 010
2
2 2
86
The Nernst Equation
V 0.53=E
V 09.062.0E
00.32
0.0592-V 0.62E
10.0100.1
0.110.0log
2
0.0592-V 0.62=E
cell
cell
cell
22
2
cell
87
Relationship of E0cell to G0 and K• From previous chapters we know the
relationship of G0 and K for a reaction.
K log RT 303.2G
or
lnK -RTG
0
0
88
Relationship of E0cell to G0 and
K• The relationship between G0 and E0
cell is also a simple one.
e ofnumber n
e mol J/V 96,487 F where
E F-n G
-
-
0cell
0
89
Relationship of E0cell to G0 and
K• Combine these two relationships into a
single relationship to relate E0cell to K.
RT
E Fn K ln
or
lnK RT -E Fn -
0cell
0cell
90
Relationship of E0cell to G0 and
K• Example 21-10: Calculate the standard
Gibbs free energy change, G0 , at 250C for the following reaction.
Cu PbCuPb 22
91
Relationship of E0cell to G0 and
K1. Calculate E0
cell using the appropriate half-reactions.
V 463.0E CuPbPbCu
V 0.126-- e 2PbPb
V 0.337 Cue 2Cu
E
0cell
022
2
02
0
92
kJ -89.4G
)rxn" of mol"(per J 1094.8G
V 463.0e mol V
J 500,96e mol 2G
E Fn G
0
40
-0
0cell
0
Relationship of E0cell to G0 and
K2. Now that we know E0
cell , we can calculate G0 .
93
Relationship of E0cell to G0 and
K• Example 21-11: Calculate the
thermodynamic equilibrium constant for the reaction in example 21-10 at 250C.
2
215
40
0
Cu
Pb105K 36.1 K ln
K 298K molJ 8.314 -
molJ1094.8
RT
G K ln
K ln RT G
94
Relationship of E0cell to G0 and
K• Example 21-12: Calculate the Gibbs Free
Energy change, G and the equilibrium constant at 250C for the following reaction with the indicated concentrations.
MM 0.50 Zn Ag2 0.30 Ag 2 Zn 2
95
Relationship of E0cell to G0 and
K1. Calculate the standard cell potential E0
cell.
V 562.1E ZnAg 2 ZnAg 2
V 0.763-- 2eZnZn
V 0.799 Age Ag2
E
0cell
200
-20
0-
0
96
Relationship of E0cell to G0 and
K2. Use the Nernst equation to calculate Ecell
for the given concentrations.
Q log 2
0592.0EE
0.748=5.6 log
6.530.0
50.0
Ag
Zn=Q
0cellcell
22+
+2
97
Relationship of E0cell to G0 and
K
V 5.6 log 2
0592.0-V 562.1E
Q log 2
0592.0EE
0.748=5.6 log
6.530.0
50.0
Ag
Zn=Q
cell
0cellcell
22+
+2
98
Relationship of E0cell to G0 and
K
V 1.540=E
V 0.022-1.562=E
V 5.6 log 2
0592.0-V 562.1E
Q log 2
0592.0EE
0.748=5.6 log
6.530.0
50.0
Ag
Zn=Q
cell
cell
cell
0cellcell
22+
+2
99
Relationship of E0cell to G0 and K• Ecell = +1.540 V, compared to E0cell = +1.562 V.
• We can use this information to calculate G.
• The negative G tells us that the reaction is spontaneous.
kJ/mol -297=G
rxn. of molper J 1097.2G
V 540.1e mol V
J 500,96e mol 2G
E Fn -=G
5
--
cell
100
Relationship of E0cell to G0 and
K• Equilibrium constants do not change with reactant
concentration.
• We can use the value of E0cell at 250C to get K.
2+
+252
0cell
0cell
Ag
Zn106=K
8.52K log
298314.8303.2
562.1500,962K log
RT 2.303
E Fn -=K log
K log RT 2.303 E Fn -
101
Primary Voltaic Cells
• As a voltaic cell discharges, its chemicals are consumed.
• Once the chemicals are consumed, further chemical action is impossible.
• The electrodes and electrolytes cannot be regenerated by reversing current flow through cell.– These cells are not rechargable.
102
• One example of a dry cell is flashlight, and radio, batteries.
• The cell’s container is made of zinc which acts as an electrode.
• A graphite rod is in the center of the cell which acts as the other electrode.
• The space between the electrodes is filled with a mixture of:
1. ammonium chloride, NH4Cl
2. manganese (IV) oxide, MnO2
3. zinc chloride, ZnCl24. and a porous inactive solid.
The Dry Cell
103
The Dry Cell• As electric current is produced, Zn dissolves and
goes into solution as Zn2+ ions.• The Zn electrode is negative and acts as the anode.
104
The Dry Cell
• The anode reaction is:
• The graphite rod is the positive electrode (cathode).
• Ammonium ions from the NH4Cl are reduced at the cathode.
Zn Zn + 2 e0 2+ -
2 NH 2 e 2 NH H4+ -
3 g 2 g
105
The Dry Cell
• The cell reaction is:
g2g3+2+
40
g2g3-+
4
-+20
H NH 2 ZnNH 2 + Znreaction Cell
H NH 2 e 2 + NH 2 reaction Cathode
e 2+Zn Zn reaction Anode
106
The Dry Cell
• The other components in the cell are included to remove the byproducts of the reaction.
• MnO2 prevents H2 from collecting on graphite rod.
• At the anode, NH3 combines with Zn2+ to form a soluble complex and removing the Zn2+ ions from the reaction.
H MnO 2 MnO(OH)2 g 2 s s 2
Zn 4 NH Zn NH2+3 3
42
108
The Dry Cell
• Alkaline dry cells are similar to ordinary dry cells except that KOH, an alkaline substance, is added to the mixture.
• Half reactions for an alkaline cell are:
V 5.1E
MnO(OH) 2OHZnOH 2 MnO 2+ Znreaction Cell
OH 2 +MnO(OH) 2 e 2 +OH 2 MnO 2reaction Cathode
e 2OH ZnOH 2 +n Z reaction Anode
0cell
ss22s20s
-s
-2s2
s2-0
s
109
The Dry Cell
• Alkaline dry cells are similar to ordinary dry cells except that KOH, an alkaline substance, is added to the mixture.
• Half reactions for an alkaline cell are:
110
Secondary Voltaic Cells
• Secondary cells are reversible, rechargeable.• The electrodes in a secondary cell can be regenerated by the
addition of electricity.– These cells can be switched from voltaic to electrolytic cells.
• One example of a secondary voltaic cell is the lead storage or car battery.
111
The Lead Storage Battery
• In the lead storage battery the electrodes are two sets of lead alloy grids (plates).
• Holes in one of the grids are filled with lead (IV) oxide, PbO2.
• The other holes are filled with spongy lead.• The electrolyte is dilute sulfuric acid.
113
The Lead Storage Battery
• As the battery discharges, spongy lead is oxidized to lead ions and the plate becomes negatively charged.
• The Pb2+ ions that are formed combine with SO42-
from sulfuric acid to form solid lead sulfate on the Pb electrode.
discharge. duringpost battery negative theis anode The
reaction. anode theis This
e 2 PbPb -+20s
Pb SO PbSO2+42-
4 s
114
The Lead Storage Battery
• The net reaction at the anode during discharge is:
• Electrons are produced at the Pb electrode.• These electrons flow through an external circuit
(the wire and starter) to the PbO2 electrode.• PbO2 is reduced to Pb2+ ions, in the acidic solution.• The Pb2+ ions combine with SO4
2- to form PbSO4 and coat the PbO2 electrode.
• PbO2 electrode is the positive electrode (cathode).
Pb SO PbSO + 2 es0
42-
4 s-
115
The Lead Storage Battery
• The cell reaction for a discharging lead storage battery is:
• As the cell discharges, the cathode reaction is:
OH 2+PbSO 2 SO+H 4 + PbO Pb reaction Cell
OH 2+PbSOe 2+SO+H 4+PbOreaction Cathode
e 2 PbSO SO Pb reaction Anode
2s4-2
4+
s2s
2s4--2
4+
s2
-s4
-24s
PbO + 4 H + SO + 2 e PbSO + 2 H O2 s+
42- -
4 s 2
116
The Lead Storage Battery
• The cell reaction for a discharging lead storage battery is:
• As the cell discharges, the cathode reaction is:
PbO + 4 H + SO + 2 e PbSO + 2 H O2 s+
42- -
4 s 2
117
The Lead Storage Battery
• What happens at each electrode during recharging?
• At the lead (IV) oxide, PbO2, electrode, lead ions are oxidized to lead (IV) oxide.
• The concentration of the H2SO4 decreases as the cell discharges.
• Recharging the cell regenerates the H2SO4.
--2
4+
s22s4 e 2 SO H 4 PbO OH 2 PbSO
charge 2s4
discharge-2
4+
s2s O2HPbSO 2SO+4H+PbOPb
118
The Lead Storage Battery
• What happens at each electrode during recharging?
• At the lead (IV) oxide, PbO2, electrode, lead ions are oxidized to lead (IV) oxide.
• The concentration of the H2SO4 decreases as the cell discharges.
• Recharging the cell regenerates the H2SO4.
--2
4+
s22s4 e 2 SO H 4 PbO OH 2 PbSO
119
The Nickel-Cadmium (Nicad) Cell
• Nicad batteries are the rechargeable cells used in calculators, cameras, watches, etc.
• As the battery discharges, the half-reactions are:
V4.1E
Ni(OH)+Cd(OH) OH 2 + NiO Cdrxn Cell
OH 2+Ni(OH)e 2+OH 2+NiO Cathode
e 2 Cd(OH) OH 2 Cd Anode
0
s2s22s2s
-s2
-2s2
-2
-s
120
The Hydrogen-Oxygen Fuel Cell
• Fuel cells are batteries that must have their reactants continuously supplied in the presence of appropriate catalysts.
• A hydrogen-oxygen fuel cell is used in the space shuttle – The fuel cell is what exploded in Apollo 13.
• Hydrogen is oxidized at the anode.• Oxygen is reduced at the cathode.
122
The Hydrogen-Oxygen Fuel Cell
• Notice that the overall reaction is the combination of hydrogen and oxygen to form water.– The cell provides a drinking water supply for the
astronauts as well as the electricity for the lights, computers, etc. on board.
• Fuel cells are very efficient. – Energy conversion rates of 60-70% are common!
OH 2 O H 2 reaction Cell
OH 4e 4OH 2O reaction Cathode
e 2OH 2OH 2 H2 reaction Anode
2g2g2
-(aq)
-)(2g2
-)(2
-(aq)g2