Post on 16-Dec-2015
Chapter 14
Electrode Potentials
14-1 Redox Chemistry & Electricity
Oxidation: a loss of electrons to an oxidizing agentReduction: a gain of electrons from a reducing agent
Reduction-Oxidation reaction (redox reaction)
ex:
Half-reactions:re: Fe3+ + e- Fe2+
ox: V2+ V3+ + e-
1. Chemistry & Electricity
• Electrochemistry: the study of the interchange of chemical & electrical energy.
• Electric charge (q) is measured in coulombs(C). • The magnitude of the charge of a single electron (or proto
n) is 1.602×10 - 19 C. A mole of electrons therefore has a charge of (1.602×10 - 19 C)(6.022×1023 /mol)= 9.649×104 C/mol, which is called the Faraday constant, F.
Example at p.310
2. Electric current is proportional to the rate of a redox reaction
I (ampere; A) = electric current
= a flow of 1 coulomb per second = 1C/s
Example at p. 310:
Sn4+ + 2e- Sn2+
at a constant rate of 4.24 mmole/h.
How much current flows into the solution?
3. Voltage & Electrical Work
wire q I E
hose H2O VH2O PH2O
The difference in electric potential between two points measures the work that is needed (or can be done) when electrons move from one point to another.
Ask yourself at p.312
• Consider the redox reaction
14.2 Galvanic Cells
Chemical reaction spontaneously occurs to produce electrical energy.
Ex: lead storage battery
When the oxidizing agent & reducing agent are physically separated, e transfer through an external wire.
generates electricity.
A cell in action
Electrodes: the redox rxn occur
anode: oxidation occur
cathode: reduction occur
Salt bridge: connect two solns.
External wire
cathodeanode e
Cell representation: Line Notation
Example :: Interpreting Line Diagrams of Cells
Figure 14-4 Another galvanic cell.
14-3 Standard PotentialsCell potential ( Ecell)
a)The voltage difference between the electrodes.
electromotive force (emf)
b)can be measured by voltmeter.
c)emf of a cell depends on
The nature of the electrodes & [ions]
Temp.
14-3 Standard Potentials
S.H.E. (standard hydrogen electrode )
It is impossible to measure Ecell of a half-rxn directly, need a reference rxn.
standard hydrogen electrode:
1atmP 1M,H
0E )( H2e2H
2H
0red cell2
gaq)(
The standard reduction potential (E0) for each half-cell is measured by an experiment shown in idealized form in Fig.14-6.
Table 14-1 & Appendix C
( 於 1953, the 17th IUPAC meeting 決定半反應以「還原反應」來表示 )
Standard Reduction Potentials for reaction
0.34V
0CuCu
0.76V
0ZnZn
1.10V
0cell
(s)(aq2
(aq)2
(s)
0.76V
0ZnZn
0
0HH
0.76V
0cell
2(g)(aq)2
(s)(aq)
0red
0ox
0cell
22
22
EEE
Cu)ZnCuZn :rxn
EEE
HZnZn 2H:rxn
EEE
0.34V0.77VEEE
0.77VE 2Fe2e2Fe
0.34VEE 2eCuCu
0.77VE FeeFe:red
FeCuCue F
0ox
0re
0cell
0re
23
0re
0ox
2
0re
23
(aq)2
(aq)2
(s)(aq)3
2
rxn:
Standard Reduction Potentials for reaction
• AgCl (s) + e- Ag (s) + Cl-
0.222 V
0.197 V in saturated KCl (formal potentional)
E0 = 0.222V
S.H.E.║ Cl- (aq, 1M) | AgCl (s) | Ag(s)
E0’ (formal potential) = 0.197 V (in saturated KCl)
S.H.E.║ KCl (aq, saturated) | AgCl (s) | Ag(s)
Formal potential
Formal Potential
Ex: Ce4+ + e- Ce3+ E°=1.6V
with H+A- E°≠1.61V
Formal potential: (E°’)
The potential for a cell containing a [reagent] ≠1M.
Ex: Ce4+/Ce3+ in 1M HCl E°’=1.28V
E is the reduction potential at the specified concentrations n: the number of electrons involved in the half-reactionR: gas constant (8.3143 V coul deg-1mol-1)T: absolute temperatureF: Faraday constant (96,487 coul eq-1) at 25°C 2.3026RT/
F=0.05916
14-4 The Nernst EquationThe net driving force for a reaction is expressed by the Nernst eqn.
Nernst Eqn for a Half-Reaction
where
a
b
[A]
[B]log
n
0.05916EE
bBneaA
E = E0 when [A] = [B] = 1M
Q (Reaction quotient ) =1 E = E0
Where, Q = [B]b / [A]a
Nernst equation for a half-reaction at 25ºC
[C] & Ecell
standard conditions: [C]=1M
what if [C]≠1M?
(ex)
a)[Al3+]=2.0M, [Mn2+]=1.0M Ecell<0.48V
b)[Al3+]=1.0M, [Mn2+]=3.0M Ecell>0.48V
0.48VE
3Mn2Al3MnAl 2
:ε
0cell
(s)(aq)3
(aq)2
(s)
0cell
Dependence of potential on pH
0.059pHE'E
]AsO[H
]AsO[Hlog
2
0.0592-0.0592pHE
]AsO[H
]AsO[Hlog
2
0.0592-]H0.0592log[E
][H ]AsO[H
]AsO[Hlog
2
0.0592-EE
OHAsOH2e2HAsOH :Ex
43
33
43
33
243
33
233-
43
Many redox reactions involved protons, and their potentials are influenced greatly by pH.
Nernst Equation for a Complete Reaction Equation for a Complete Reaction
• 1. Write reduction half-reactions for both half-cells and find E0 for each in Appendix C.
• 2. Write Nernst equation for the half-reaction in the right half-cell.
• 3. Write Nernst equation for the half-reaction in the left half-cell.
• 4. Fine the net cell voltage by subtraction: E=E +- E - .
• 5. To write a balanced net cell reaction.
P.321
Nernst Equation for a complete reaction
]3.6
1log 18 [log
2
0.0592-201.1
]10[3.6
[0.01]log
2
0.0592--0.402)](-799.0[
][Ag
][Cdlog
2
0.0592-EE
2
210
2
2
Example at p. 321 Rxn: 2Ag+ (aq) + Cd (s) Ag (s) + Cd 2+ (aq)
2Ag+ + 2e- Ag (s) E0+ = 0.799
Cd 2+ + 2e- Cd (s) E0- = -0.402
Electrons Flow Toward More Positive Potential• Electrons always flow from left to right in a diagra
m like Figure 14-7.
14-5 E0 and the Equilibrium Constant
Qlog n
0.059 E
]][Cl[Fe
][Felog
n
0.059EE
]log[Cln
0.059E
][Fe
][Felog
n
0.059E
(EEEEE
VE AgClFeAgFe
VE ClAgeAgCl
VE FeeFe
3
2
3
2
AgAgCl,Fe,Fecell
23
--
2-3
23
)(
))(
.)s()s(
.)s()s(
.
0
5490
2220
7710
14-5 E0 and the Equilibrium Constant
Klog n
0.05916E
Klog n
0.05916E0
Qlog n
0.05916EE
• E = 0 and Q = K
• E0 > 0 K > 1, • E0 < 0, K < 1
At equilibrium
Ex:• One beaker contains a solution of 0.020 M KMnO4, 0.005
M MnSO4, and 0.500 M H2SO4; and a second beaker
contains 0.150 M FeSO4 and 0.0015 M Fe2 (SO4)3. The 2
beakers are connected by a salt bridge and Pt electrodes are placed one in each. The electrodes are connected via a wire with a voltmeter in between.
• What would be the potential of each half-cell (a) before reaction and (b) after reaction?
• What would be the measured cell voltage (c) at the start of the reaction and (d) after the reaction reaches eq.?
• Assume H2SO4 to be completely ionized and equal
volumes in each beaker.
Ans:
5Fe+2 + MnO4- + 8H+ 5Fe+3 + Mn+2 + 4H2O
Pt | Fe+2(0.15 M), Fe+3(0.003 M)║MnO4-(0.02 M), Mn+2(0.005 M), H+(1.00 M) | Pt
(a) EFe = EoFe(III)/Fe(II) – (0.059/1) log [Fe+2]/[Fe+3]
= 0.771 – 0.059 log (0.150)/(0.0015 × 2) = 0.671 V
EMn = EoMnO4-/Mn+2 – (0.059/5)log [Mn+2]/[MnO4
-][H+]8
= 1.51 – 0.059/5 log (0.005)/(0.02)(1.00) 8 = 1.52 V
(b) At eq., EFe = EMn, 可以含鐵之半反應來看,先找出平衡時兩個鐵離子的濃度,得EFe = 0.771 – 0.059 log (0.05)/(0.103) = 0.790 V
(c) Ecell = EMn - EFe = 1.52 – 0.671 = 0.849 V
(d) At eq., EFe = EMn, 所以 Ecell = 0 V
Determinea) e- flow direction?
b) anode? cathode?
c) E =? at 25℃
Concentration Cells
Ag Ag
1MAgNO 3(aq)
1M NaCl(s)
& AgCl(s)
1.0Msp
0
ClAgK
1.0
Aglog
1
0.05920
0.58Vε
0?ε
(ex) Calculate Ksp for AgCl at 25℃ ε=0.58V
soln:
Ex: Systems involving ppt
14-6 Reference Electrodes
Indicator electrode: responds to analyte concentration
Reference electrode: maintains a fixed potential
]log[Cl0592.0E][Fe
][Felog0592.0EEEE
3
2
cell
• Silver-Sliver Chloride• AgCl + e- Ag(s) +Cl-
E0 = 0.222 V
E (saturated KCl) = 0.197 V
• Calomel • Hg2Cl2 + 2e- 2Hg(l) +2Cl-
E0 = 0.268 V
E (saturated KCl) = 0.241 V saturated calomel electrode (S.C.E.)
Reference Electrodes
Voltage conversion between different reference scales
• The potential of A ?
?