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CHEMISTRY 59-320 ANALYTICAL CHEMISTRY Fall - 2010

CHEMISTRY 59-320 ANALYTICAL CHEMISTRY Fall - 2010. Chapter 16: Redox titration. 16-1 The shape of a redox titration curve. A redox titration is based on an oxidation-reduction reaction between analyte and titrant.

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CHEMISTRY 59-320 ANALYTICAL CHEMISTRY Fall - 2010

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  1. CHEMISTRY 59-320ANALYTICAL CHEMISTRYFall - 2010 Chapter 16: Redox titration

  2. 16-1 The shape of a redox titration curve • A redox titration is based on an oxidation-reduction reaction between analyte and titrant. • Consider the titration of iron(II) with standard cerium(IV), monitored potentiometrically with Pt and calomel electrodes. The potentials show above is in 1 M HClO4 solution. Note that equilibria 16-2 and 16-3 are both established at the Pt electrode.

  3. There are three distinct regions in the titration of iron(II) with standard cerium(IV), monitored potentiometrically with Pt and calomel electrodes. Before the equivalence point, where the potential at Pt is dominated by the analyte redox pair. At the equivalence point, where the potential at the indicator electrode is the average of their conditional potential. After the equivalence point, where the potential was determined by the titratant redox pair.

  4. E of the cell Before the equivalence point: using analyte’s concentration to calculate E+ At the equivalence point: needs both redox pairs to calculate (why?)

  5. After the equivalence point: Summary • The greater the difference in reduction potential between analyze and titrant, the sharper will be the end point. • The voltage at any point in this titration depends only on the ratio of reactants; it will be independent of dilution. • Prior to the equivalence point, the half-reaction involving analyze is used to find the voltage because the concentrations of both the oxidized and the reduced forms of analyte are known. • After the equivalence point, the half-reaction involving titrant is employed. At the equivalence point, both half-reactions are used simultaneously to find the voltage. There are two special points during the above titration process: (1) when V = ½ Ve, [Fe3+] = [Fe2+] and E+ = E°(Fe3+ | Fe2+) ; (2) when V = 2 Ve, [Ce4+] = [Ce3+] and E+ = E°(Ce4+ | Ce3+) = 1.70 V.

  6. The curve is not symmetric about the equivalence point. This is because the stoichiometry of reactants is 2:1, not 1:1. Still, the curve is so steep near the equivalence point that negligible error is introduced if the center of the steep part is taken as the end point. For the titration of Tl+ (Thallium) by IO3- in 1.00 M HCl solution

  7. or 16-2 Finding the end point • A redox indicator is a compound that changes color when it goes from its oxidized to its reduced state. For ferroin, with E° = 1.147 V we expect the color change to occur in the approximate range 1.088 V to 1.206 V with respect SHE

  8. A redox titration is feasible if the difference between analyte and titrant is > 0.2 V. If the difference in the formal potential is > 0.4 V, then a redox indicator usually gives a satisfactory end point.

  9. Starch is the indicator of choice for those procedures involving iodine because it forms an intense blue complex with iodine. Starch is not a redox indicator; it responds specifically to the presence of I2, not to a change in redox potential. The active fraction of starch is amylose, a polymer of the sugar α-d-glucose. In the presence of starch, iodine forms I6 chains inside the amylose helix and the color turns dark blue Starch-Iodine Complex

  10. 16-3 Adjustment of analyte oxidation state • Sometimes one needs to adjust the oxidation state of analyte before it can be titrated. • Pre-adjustment must be quantitative and one must eliminate excess pre-adjustment reagent so that it won’t interference the subsequent titration. • Pre-oxidation: powerful oxidants that can be easily removed after preoxidation include peroxydisulfate, silver(II) oxide, sodium bismuthate. Definition: • Disproportionation: a reactant oxidizes and reduces itself, such as H2O2 in boiling water. • Pre-reduction: Process of reducing an analyte to a lower oxidation state prior to performing a titration with an oxidizing agent. • Amalgam: a solution of anything in mercury.

  11. 16-4 Oxidation with potassium permanganate • KMnO4 is a strong oxidant with an intense violet color. In strongly acidic solutions (pH < 1), it is reduced to Mn2+. • In neutral or alkaline solution, it is reduced to brown solid MnO2. • In strongly alkaline solution ( 2 M NaOH), green manganate ion (MnO42-) is produced.

  12. 16-5 Oxidation with Ce4+ • Reduction of Ce4+ to Ce3+ proceeds cleanly in acidic solutions. • The aquo ion, Ce(H20)n4+, probably does not exist in any of these solutions, because Ce(IV) binds anions (ClO4-, SO42- NO3-, Cl-) very strongly.

  13. 16-7 Methods Involving Iodine • Iodimetry: a reducing analyte is titrated directly with iodine (to produce I−). • iodometry, an oxidizing analyte is added to excess I− to produce iodine, which is then titrated with standard thiosulfate solution. • Iodine only dissolves slightly in water. Its solubility is enhanced by interacting with I- • A typical 0.05 M solution of I2 for titrations is prepared by dissolving 0.12 mol of KI plus 0.05 mol of I2 in 1 L of water. When we speak of using iodine as a titrant, we almost always mean that we are using a solution of I2 plus excess I−.

  14. Preparation and Standardization of Solutions • Acidic solutions of I3- are unstable because the excess I− is slowly oxidized by air: • In neutral solutions, oxidation is insignificant in the absence of heat, light, and metal ions. At pH ≳ 11, triiodide disproportionates to hypoiodous acid (HOI), iodate, and iodide. • An excellent way to prepare standard I3- is to add a weighed quantity of potassium iodate to a small excess of KI. Then add excess strong acid (giving pH ≈ 1) to produce I2 by quantitative reverse disproportionation:

  15. Would indigo tetrasulfonate be a suitable redox indicator for the titration of Fe(CN)64- with Tl3+ in 1 M HCl? Solution: Standard potentials: indigo tetrasulfonate is 0.36 V; Fe(CN)63-/ Fe(CN)64- is 0.356 V; Tl3+/Tl+, 0.77 V. The end-point potential will be between 0.356 and 0.77 V. Indigo tetrasulfonate changes color near 0.36 V. Therefore it will not be a useful indicator for this titration. Problems

  16. Given the following data select the best indicator for the titration of iron(II) with thallium(III), using a S.C.E. reference electrode. Which of the following titrations would give a titration curve symmetric around the equivalence point? (a) Na2S2O3 titrated with I2.(b) ascorbic acid titrated with I2.(c)As4O6 titrated with I2. (a) methylene blue(b) diphenylamine sulfonic acid(c) diphenylamine

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