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Electroanalyti Electroanalyti cal methods cal methods Chapter Chapter 2

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Page 1: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

Electroanalytical Electroanalytical methodsmethods

ChapterChapter 2

Page 2: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

2

Electroanalytical methods

ElectrogravimetryElectrogravimetry Coulometry Coulometry PotentiometryPotentiometry VoltammetryVoltammetry

Page 3: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

3

PotentiometryPotentiometry

Fundamentals of potentiometry

Reference electrodes

Indicator and ion selective electrodes

Instrumentation and measurement of cell electromotive force (e.m.f)

Page 4: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

4

Fundamentals of potentiometry

When a metal is immersed in a solution containing its own ions, the potential difference is established between the metal and the solution

Ox + ne Red

Ra

a

nF

RT 0ln

Page 5: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Fundamentals of potentiometry

M n+ + ne = M

= + (RT/nF) ln Mn+

Nernst equation

Page 6: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Fundamentals of potentiometry

Indicator electrode

+Reference electrode

+Solution

Cell

Page 7: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Fundamentals of potentiometry

M M n+ reference electrode

E = (+) - (-) + L

E = (+) - (-)

= r - - (RT/nF) ln Mn+

Liquid junction potential

Page 8: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Reference electrodesReference electrodes

Hydrogen electrode

Calomel electrode

Silver – silver chloride electrode

Page 9: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Calomel electrode

Page 10: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Calomel electrode

Hg│Hg2Cl2 , KCl(xM)‖

Hg2Cl2(s)+ 2e 2Hg(l)+ 2Cl-

Electrode potential

= Hg2Cl2 / Hg + (RT/nF) ln (1/ Cl-2)

= Hg2Cl2 / Hg - 0.059 lg Cl-

Page 11: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Silver – silver chloride electrode

Ag│AgCl , KCl(xM)‖

AgCl(s)+ e Ag(s)+Cl-

Electrode potential

= AgCl / Ag + (RT/nF) ln (1/ Cl-)

= AgCl / Ag - 0.059 lg Cl-

Page 12: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Indicator and ion selective electrodes

Indicator electrode

---The potential depends on the activity of a particular ionic species which it is desired to quantify

Page 13: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Indicator and ion selective electrodes

Electrode of the first kind

Electrode of the second kind

The glass electrode

Crystalline membrane electrode

Biochemical electrode

Inert electrodeMetal Metal electrodelectrodee

MembraneMembrane electrodeelectrode

********************************************

Page 14: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Electrode of the first kind

Indicator and ion selective electrodes

---The ion to be determined is directly involved in the electrode reaction

= M n+

/ M+ (RT/nF) ln M

n+

Metal M immersed in a solution of M n+

ion

Page 15: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

15

Electrode of the second kind

Indicator and ion selective electrodes

Silver – silver chloride electrode

--- coating a silver wire with silver choloride

AgCl(s)+ e Ag(s)+Cl-

= AgCl / Ag + (RT/nF) ln (1/ Cl-)

= AgCl / Ag - 0.059 lg Cl-

Page 16: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Fe 3+ + e Fe 2+

= Fe 3+ / Fe2+ + (RT/nF) ln (Fe3+ / Fe

2+)

Inert electrode

---An inert electrode (Pt) is place in a system containing both an oxidizing agent and its reduction product

Page 17: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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The glass electrode

Page 18: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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The glass electrode

Composition

SiO2 72% + Na2O 22% + CaO 6%

SiO2 63% + Li2O 28% + Cs2O 2%

+ BaO 4% + La2O3 3%

Page 19: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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The glass electrode

Theory

--- Ion exchange process

glass = K + (RT/nF) ln H+

= K’ – 0.059 pH

Page 20: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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The glass electrode

properties

Can be used in the presence of strong oxidants and reductants

Can be used in viscous media

Can be used in the presence of proteins

Page 21: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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The glass electrode

properties

High resistance

Acid error and alkaline error

Page 22: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Crystalline membrane electrode

composition

Lanthanum fluoride eletrode

Crystal of lanthanum fluoride+0.1 mol/L NaF – 0.1 mol/L NaCl+

Silver – silver chloride electrode

Page 23: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Crystalline membrane electrode

Theory

Lattice defect

membrane = K - (RT/nF) ln F-

= K – 0.059 lg F-

Page 24: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Crystalline membrane electrode

properties

Detection limit ~ 10-7 mol/L

Interference ~ OH-

pH range ~ 5 - 6

Page 25: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Gas – sensing electrode

NH3 – NH4Cl

CO2 – NaHCO3

NO2 –NaNO2

Page 26: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Biochemical electrode

Urea electrode

CO(NH2)2 + H2O + 2H+ 2NH4+ +

CO2

urease

Page 27: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Instrumentation

Determination of pH

Page 28: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Determination of pH

Glass electrode│ Solution X

││ SCE

E = SCE - glass

= SCE – ( AgCl / Ag + K + (RT/nF) ln H+)

E = K’ + (2.303 RT /F) pH

Page 29: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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E x= K’ x + (2.303 RT /F) pH x

Determination of pH

E s= K’ s + (2.303 RT /F) pH s

K’ x = K’ s

pH x = pH s + (E x - E s) F/2.303RT

--- Operational definition

Page 30: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Determination of pH

Solution

0.05 M potassium hydrogenphthalate

0.025 M KH2PO4

0.025 M Na2HPO4

0.01 M Borax

pH 4.004 6.864 9.182

pH standard solution (25 Cº)

Page 31: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Determination of fluoride

membrane = K ± (0.059/n) lg

Calibration curve

Standard addition

Page 32: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Determination of fluoride

Calibration curve

Standard solutions

Total ionic strength adjustment buffer(TISAB)NaClNaAc - HAc

Sodium citrate

Ionic strength

pH

Interference

Page 33: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry

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Standard addition

Determination of fluoride

E1 = kc + k log y1 C1

E2 = kc + k log y1 (V1C1 + V2Cs)/(V1 + V2)

E2 - E1 = k log (V1C1 + V2Cs)/ C1(V1 + V2)

C1 = Cs/(10 E/k(1+V1/V2) – V1/V2)

Page 34: Electroanalytical methods Chapter Chapter 2 2 Electroanalytical methods  Electrogravimetry  Coulometry  Potentiometry  Voltammetry