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1 CHAPTER 2 ELECTROLYTE SOLUTION 2-1 Strong and Weak Electrolyte Solution 2-2 Theory of Acid-base 2-3 Acidity and Calculation of Solution 2-4 Equilibrium.

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Presentation on theme: "1 CHAPTER 2 ELECTROLYTE SOLUTION 2-1 Strong and Weak Electrolyte Solution 2-2 Theory of Acid-base 2-3 Acidity and Calculation of Solution 2-4 Equilibrium."— Presentation transcript:

1 1 CHAPTER 2 ELECTROLYTE SOLUTION 2-1 Strong and Weak Electrolyte Solution 2-2 Theory of Acid-base 2-3 Acidity and Calculation of Solution 2-4 Equilibrium Between Dissolution and Precipitation

2 2 2-1 Strong and Weak Electrolyte Solution 2-1.1 Theory of Strong Electrolyte Solution Ion- ion Interaction Theory Figure 2-1 Ion atmosphere of strong electrolyte solution

3 3 Ion Activity and Activity Coefficient Activity(a): Ion concentration, which can play a real action in solution is ionic effective concentration, is called ion activity. actual concentration of ion (c) multiply a correction factor - activity coefficient ( f ). a = f ·c (2-1) Generally, a < c, 0 < f < 1

4 4 Activity coefficient are influenced by ion concentration the electric-charge number of ion has nothing to do with the nature of ion.

5 5 Ionic Strength ( I ) Where, I is ionic strength ; c is the amount-of-substance concentration of the ion i; z i is the charge number of the ion i. Note that the activity is for an ion; the ion strength is for a solution.

6 6 Table 2-1 Ion activity coefficient and ion strength of solution

7 7 Example 2-1 25ml 0.02mol /L HCl mixed with 25ml 0.18mol /L KCl, calculate activity of H + ? Solution: (1) calculate the ion strength of the solution: I =( 0.01×1 2 +0.01×1 2 +0.09×1 2 +0.09×1 2 )/2 =0.1 (2) look up the activity coefficient of ion has one charge: when I = 0.1, Z =1, f = 0.78 (3) calculate the activity of H + (a H + ) c H + =0.02/2 =0.01mol /L, f = 0.78 So, a H + = f ·c = 0.78×0.01 = 0.0078 (mol /L)

8 8 2-1.2 2-1.2 Ionization Equilibrium of Weak Electrolyte Solution The law of Chemical Equilibrium (Equilibrium Constant) a A + b B → c C + d D [C] c [D] d K = ------------ (2-3) [A] a [B] b

9 9 K i ) Ionization Constant (K i ) HAc + H 2 O H 3 O + + Ac - or simply HAc H + + Ac - The corresponding equilibrium-constant expression is [H + ][Ac - ] K i = ------------ (2-4) [HAc]

10 10 α Degree of Ionization ( α ) 1. Definition: Number of ionized molecules α= ----------------------------×100% total number of solute molecules Number of ionized molecules = -----------------------------------×100% ionized molecules + non- ionized molecules concentration of ionized weak electrolyte = ----------------------------------×100% initial concentration of weak electrolyte

11 11 2. The factor of influencing degree of ionization ① the nature of solute: 18 ℃, 0.1mol/L, α HAc = 1.33%, α H2S = 0.07%, α HCN = 0.007% ② the initial concentration of solute: (the more dilute the solution, the greater the degree of ionization). ③ temperature:

12 12 Dilution Law HA H + + A - c α Initial c c 0 0 Equilibrium c – c α cα cα concentration [H + ][A - ] cα·cα cα 2 K HA = ------------ = ---------- = ------- [HA] c- cα 1-α For K a is very small, α is very small, 1-α≈ 1

13 13 K HA = c α 2 or Physical meaning: Note that above dilute law only is for some given conditions : (1) the weak electrolyte must be monoprotic (2) α≤ 5%

14 14 The Common Ion Effect and Salt Effect 1. Common ion effect The ionization of a weak electrolyte is markedly decreased by the adding to the solution an ionic compound containing one of the ion of the weak electrolyte, this effect is called the common ion effect. For example, HAcAc - + H + NaAc → Ac – + Na + shift the equilibrium from right to left, decreasing the [H + ].

15 15 2. Salt effect The ionization of a weak electrolyte is increased by adding to the solution an soluble strong electrolyte which not contains the common ion with the weak electrolyte. This effect is called salt effect. For example: 0.1mol/L [H Ac] α= 1.33%, adding NaCl, [NaCl]= 0.1mol/L, α= 1. 68%

16 16 Example: There is a solution of c(HAc) =0.1mol/L, if we add NaAc, when c(NaAc)=0.1mol/L. Calculate the α of HAc. Solution: HAcH + + Ac - Initial c 0.1 0 0 Equilibrium c 0.1-[H + ] [H + ] 0.1+ [H + ] ≈0.1 ≈0.1 [H + ][Ac - ] [H + ]×0.1 K a = ------------- = ------------ = [H + ] = 1.8×10 -5 [H Ac] 0.1 α= [H + ]/[HAc] = 0.018% << 1.33%

17 17 2-2.2 Bronsted-Lowry Acids and Bases 1. Definition of acid and base Acid - is a substance capable of donating a proton. HCl, NH 4 +, HSO 4 -, H 2 O Base - is a substance capable of accepting a proton. Cl -, NH 3, HSO 4 -, OH - 2-2 2-2 Theory of Acid-base

18 18 A HCl base acid Conjugate acid-base pair H + + B H + + Cl - H 2 CO 3 H + + HCO 3 - HCO 3 - H + + CO 3 2- NH 4 + H + + NH 3 H 3 O + H + + H 2 O H 2 OH + + OH -

19 19 Conclusion: Acid or base may be a molecule, atom, or ion. Some molecules or ions are capable of donating a proton, and also accepting a proton, which named ampholyte. There are no concepts of salt in acid-base proton theory.

20 20 2. Essence of Acid and Base Reaction Essence: proton transfer reaction. For example: HCl(g) + NH 3 (g) H+H+ conjugate NH 4 + + Cl - A 1 + B 2 A 2 + B 1

21 21 (1) Compare by K a or K b HAc + H 2 O H 3 O + + Ac - [H 3 O + ][Ac - ] K a = ────── [HAc] H+H+ The smaller the value for K a , the weaker the acid ; The greater the value for K a , the stronger the acid. 3. Relative Strength of Acids and Bases

22 22 Ac - + H 2 O HAc + OH - [HAc][OH - ] K b = ────── [Ac - ] H+H+ The smaller the value for K b , the weaker the base ; The greater the value for K b , the stronger the base.

23 23 The relationship between K a and K b : K a × K b = K w (2) The relationship between acid-base strength and solvent H 2 O weak acid NH 3 strong acid HNO 3 H 2 O strong acid HAc weak acid H 2 SO 4 base substance HAc

24 24 4. The Leveling Effect and Differentiating Effect The leveling effect: The inability of a solvent to differentiate among the relative strengths of all acids stronger than the solvent’s conjugate acid is known as the leveling effect. B ecause the solvent is said to level the strengths of these acids, making them seen identical. leveling solvent: Strong acid such as HClO 4, HCl, HNO 3, H 2 SO 4 will appear to be of equal strength in aqueous solution.

25 25 Strong acids--hydrochloric acid (HCl), nitric acid (HNO 3 ), perchloric acid (HClO 4 ), and sulfuric acid (H 2 SO 4 ), for example- are all strong electrolytes. They may be assumed to be completely ionized in water. HCl(a q) + H 2 O(1) → H 3 O + (aq) + Cl - (aq) HNO 3 (a q) + H 2 O(1) → H 3 O + (aq) + NO 3 - (aq) HClO 4 (a q) + H 2 O(1) → H 3 O + (aq) + ClO 4 - (aq) H 2 SO 4 (a q) + H 2 O(1) → H 3 O + (aq) + HSO 4 - (aq) we can not determine their strength, because H 3 O + is the strongest acid that can exist in aqueous solution. For strong acid or base For strong acid or base

26 26 The differentiating effect: The ability of a solvent to differentiate among the relative strengths of all acids stronger than the solvent’s conjugate acid is known as the differentiating effect. If we use a more weakly basic solvent like acetic acid, acetic acid can function as a base by accepting a proton. Since acetic acid is a much weaker base than water, it is not as easily protonated. Thus there are appreciable differences in the extent.

27 27 HCl(aq) + CH 3 COOH() CH 3 COOH 2 + (aq) + Cl - (aq) HNO 3 (aq) + CH 3 COOH () CH 3 COOH 2 + (aq) + NO 3 - (aq) HClO 4 (aq)+ CH 3 COOH () CH 3 COOH 2 + (aq) + ClO 4 - (aq) H 2 SO 4 (aq)+ CH 3 COOH () CH 3 COOH 2 + (aq) + HSO 4 - (aq) HCl(aq) + CH 3 COOH( l ) CH 3 COOH 2 + (aq) + Cl - (aq) HNO 3 (aq) + CH 3 COOH ( l ) CH 3 COOH 2 + (aq) + NO 3 - (aq) HClO 4 (aq)+ CH 3 COOH ( l ) CH 3 COOH 2 + (aq) + ClO 4 - (aq) H 2 SO 4 (aq)+ CH 3 COOH ( l ) CH 3 COOH 2 + (aq) + HSO 4 - (aq) In acetic acid solvent, their relative strength increase as follows: HNO 3 < H 2 SO 4 < HCl < HClO 4

28 28 2-3 Acidity and Calculation of Solution 2-3.1 Autoionization of Water H 2 O(l) + H 2 O(l)H 3 O + (aq) + OH - (aq) Water is capable of acting as a proton donor and proton acceptor toward itself. The process by which this occurs is called autoionization of water.

29 29 K w = [H 3 O + ][OH - ] Where K w is the equilibrium constant for water (unitless), is called ion product of water or autoionization equilibrium constant. At 25 ℃, K w = [H 3 O + ][OH - ] = 1.0 ×10 -14 [H + ] > [OH - ] in acid solutions [H + ] < [OH - ] in basic solutions [H + ] = [OH - ] in neutral solutions

30 30 2-3.2 Acidity of solution pH = - log a H + = -log [H 3 O + ] pOH = - log a OH - = -log[OH - ] For, [H + ][OH - ] = K w = 1×10 -14 So, pH + pOH =pK w = 14.00 In neutral solutions, pH = 7 = pOH, In acid solutions, pH < 7 < pOH In basic solutions, pH > 7 > pOH

31 31 2-3.3 Calculation of Acidity of Solution ● For Strong Acids and Bases pH = - log[H + ] = -log[acid] pOH = - log[OH - ] = -log[base] Example:

32 32 ● Bases ● Monoprotic Weak Acids and Bases H Ac Solve this equation: [H + ] = - K a /2 + √ K a 2 /4 +K a c H + + Ac – initial c 0 0 equilibrium c- [H + ] [H + ] [Ac - ] = [H + ] [H + ] [Ac - ] [H + ] 2 K a = -------------- = ----------- [H Ac] c-[H + ] [H + ] 2 + K a [H + ] – K a c = 0

33 33 When: c/K a ≥ 10 3, or α≤ 5%, c - [H + ] ≈ c thus, Similarly, for weak base, there is an equation: Note that above equation is limited for some given condition: Example 4-5: P 41

34 34 2-4 Equilibrium between Dissolution and Precipitation 2-4.1 Solubility Product Constant (K sp ) K sp = [Ag + ][Cl - ] AgCl (s) dissolution precipitation Ag + + Cl - solubility product constant

35 35 ● Mg(OH) 2 (s) Mg 2+ + 2OH - K sp = [M g 2+ ][OH - ] 2 ● Ag 2 CrO 4 (s) K sp = [A g + ] 2 [CrO 4 2- ] 2Ag + + CrO 4 2- ● Fe(OH) 3 (s) Fe 3+ + 3OH - K sp = [Fe 3+ ][OH - ] 3 ● A m B n(s) mA n+ + nB m- K sp = [A n+ ] m [B m- ] n

36 36 2-4.2 Exchange between Solubility and K sp ● AB (s, k sp ) AB (s) A + B In saturated solution: [A]=[B]=s (mol/L) K sp = [A] [B]= s 2

37 37 ● AB 2 (A 2 B) AB 2(s) A + 2B In saturated solution: [A]=s (mol/L) [B]=2s(mol/L) K sp = [A] [B] 2 = s×(2s) 2 = 4s 3 oror

38 38 The K sp for CaF 2 is 3.9×10 -11. What is its solubility in water, in grams per liter? Example2-4 : s = 2.1× 10 - 4 mol /L Solution : 2.1× 10 - 4 mol /L × 78.1 g /mol = 1.6 × 10 -2 g / L

39 39 Q i (ion product quotient) : the product of the ion concentration in solution when the system is under any situation ( at equilibrium or not ). Q i (AgCl)=c Ag + c Cl - Difference between Q i and K sp : 2-4.3 Formation and dissolution of precipitation ● Rule of Solubility Product HAc Ag + + Cl - H + + Ac - AgCl (s)

40 40 The relationship between Q i and K sp 1. If Q i = K sp, equilibrium is reached - no precipitate will form. Saturated solution 2. If Q i > K sp, a precipitate will form (until Q i decreases to K sp ). Supersaturated solution 3. If Q i < K sp, any precipitate in solution will dissolve until Q i increases to K sp. Uns aturated solution The state above is called rule of solubility product.

41 41 ● Formation of precipitation condition: Q i > K sp Example 2-5: Does a precipitate form if 0.100 L of 3.0 × 10 -3 mol/L Pb(NO 3 ) 2 is added to 0.400 L of 5.0 × 10 -3 mol /L Na 2 SO 4 ? possible precipitate form is PbSO 4 ( K sp = 1.6 × 10 -8 ) [Pb 2+ ] = 6.0 × 10 -4 mol /L [SO 4 2- ] =4.0 × 10 -3 mol /L Q i = [Pb 2+ ][SO 4 2- ] = (6.0 × 10 - 4 )(4.0 × 10 -3 ) = 2.4 ×10 - 6 Because Q i > K sp, PbSO 4 will precipitate!

42 42 ● Dissolution of precipitation condition: Q i < K sp (ion product < ) ● Dissolution of precipitation condition: Q i < K sp (ion product < solubility product) There are several methods to dissolve precipitation. 1. Forming weak electrolytes by adding some compounds make precipitation dissolve.

43 43 For example: Mg(OH) 2 not only dissolve in acid, but also dissolve in NH 4 Cl solution. Mg(OH) 2 + 2HCl = MgCl 2 + 2H 2 O Mg(OH) 2(s) 2H 2 O Mg 2+ + 2OH - 2HCl2Cl - + 2H + + Because formed weak electrolyte H 2 O, [OH - ] decrease, shift the equilibrium from left to right.

44 44 2. Forming coordination compounds by adding some agents make precipitation dissolve. For example, AgCl precipitation dissolve in NH 3 ·H 2 O. A gCl (s) + 2NH 3 = [A g(NH 3 ) 2 ] + + Cl - AgCl (s) Ag + + Cl - + 2NH 3 [A g(NH 3 ) 2 ] +

45 45 3. Producing oxidation-reduction reactions by adding oxidizing agents or reducing agents make precipitation dissolve. For example : To the CuS precipitation add the dilution HNO 3, CuS might dissolve. 3CuS (s) + 8HNO 3(dilution) = 3Cu(NO 3 ) 2 + 3S + 2NO + 4H 2 O Cu S (s) S 2- + Cu 2+ + HNO 3 S↓+ NO↑ + H 2 O

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