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Chapter 8 Activity.

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Presentation on theme: "Chapter 8 Activity."— Presentation transcript:

1 Chapter 8 Activity

2 Homework Chapter 8 - Activity
8.2, 8.3, 8.6, 8.9, 8.10, 8.12

3 Question 8.2 Q: Which statements are true?
In the ionic strength, m, range of M, activity coefficients decrease with: a) increasing ionic strength b) increasing ionic charge c) decreasing hydrated radius All are true!!

4 Question 8.3 Calculate the ionic strength of
M KOH M La(IO3)3 (assuming complete dissociation at low concentration) Ionic strength (m) = ½ (c1z12+ c2z22 + …) = ½ [0.0087M(+1) M(-1)2] = M Remember for +1/-1 systems: Ionic strength, m = Molarity, M

5 Question 8.3 (cont’d) Calculate the ionic strength of
M KOH M La(IO3)3 (assuming complete dissociation at low concentration) Ionic strength (m) = ½ (c1z12+ c2z22 + …) = ½ [0.0002M(+3) M(-1)2] = M

6 Question 8.6 Calculate the activity coefficient of Zn2+ when m = M by using (a) Equation 8-6 and (b) linear interpolation with Table 8-1. a) =-0.375 g=0.422

7 Question 8.6 (cont’d) Calculate the activity coefficient of Zn2+ when m = M by using (a) Equation 8-6 and (b) linear interpolation with Table 8-1. = 0.432

8 Question 8-9 Calculate the concentration of Hg22+ in saturated solutions of Hg2Br2 in M KNO3. Hg2Br2(s) D Hg Br- Ksp=5.6x10-23 some -x +x +2x some-x +x +2x I C E

9 8-10. Find the concentration of Ba2+ in a M (CH3)4NIO3 solution saturated with Ba(IO3)2 (s).+ Ba(IO3)2  Ba2+ + 2IO3 Ksp = 7.11 x 10-11 I C E some -x +x +2x some-x +x +2x

10

11

12 8-10. Find the concentration of Ba2+ in a M (CH3)4NIO3 solution saturated with Ba(IO3)2 (s).+ Ba(IO3)2  Ba2+ + 2IO3 Ksp = 1.5 x 10-9 I C E some -x +x +2x some-x +x 0.1+2x

13 8-10. Find the concentration of Ba2+ in a M (CH3)4NIO3 solution saturated with Ba(IO3)2 (s).+ Ba(IO3)2  Ba2+ + 2IO3 Ksp = 1.5 x 10-9 I C E some -x +x +2x some-x +x 0.1+2x X = 6.57 x 10-7

14 Question 8-12 Using activities correctly, calculate the pH of a solution containing M NaOH plus M LiNO3. What is the pH if you neglected activities? (m) = ½ (c1z12+ c2z22 + …) = ½ [0.010M(+1) M(-1) M(+1) M(-1)2] = M gOH = pH = AH = [H+]gH

15 Question 8-12 (cont’d) Using activities correctly, calculate the pH of a solution containing M NaOH plus M LiNO3. What is the pH if you neglected activities? pH = 11.94

16 Question 8-12 (cont’d) Using activities correctly, calculate the pH of a solution containing M NaOH plus M LiNO3. What is the pH if you neglected activities? pH ~ -log[H+] =

17 Finally Calculate the pH of a solution that contains 0.1 M Acid and 0.01 M conjugate base Calculate the pH of a solution containing 0.1 M Acid and 0.05 M conjugate base. Calculate the pH of a solution containing 0.1 M Acid and 0.1 M conjugate base.

18 Acid/Base Titrations

19 Titrations Titration Curve – always calculate equivalent point first
Strong Acid/Strong Base Regions that require “different” calculations B/F any base is added Half-way point region At the equivalence point After the equivalence point

20 Strong Acid/Strong Base
50 mL of M KOH Titrated with M HBr First -find Volume at equivalence M1V1 = M2V2 (0.050 L)( M) = V V = 10.0 mL

21 Strong Acid/Strong Base
50.00 mL of M KOH Titrated with M HBr Second – find initial pH pH = - logAH ~ -log [H+] pOH = -logAOH ~ -log [OH-] pH = 12.30

22 Strong Acid/Strong Base
50 mL of M KOH Titrated with M HBr Third– find pH at mid-way volume KOH (aq) + HBr (aq) -> H2O (l) + KBr(aq) (~6 ml) Before After mol mol mol 0 mol Limiting Reactant mol mol pH = 11.8

23 Strong Acid/Strong Base
50 mL of M KOH Titrated with M HBr Fourth – find pH at equivalence point KOH (aq) + HBr (aq) -> H2O (l) + KBr(aq) Before After mol mol 0 mol 0 mol mol mol pH = 7.0

24 Strong Acid/Strong Base
50 mL of M KOH Titrated with M HBr Finally – find pH after equivalence point 12 ml KOH (aq) + HBr (aq) -> H2O (l) + KBr(aq) Limiting Reactant Before After mol mol 0 mol mol mol pH = 2.5

25

26

27 Titration of WEAK acid with a strong base

28

29 Titration of a weak acid solution with a strong base.
25.0 mL of M acetic acid Ka = 1.8 x 10-5 Titrant = M NaOH First, calculate the volume at the equivalence-point M1V1 = M2V2 ( L) M = M (V2) V2 = L or 25.0 mL

30 Titration of a weak acid solution with a strong base.
25.0 mL of M acetic acid Ka = 1.8 x 10-5 Titrant = M NaOH Second, Calculate the initial pH of the acetic acid solution

31 Titration of a weak acid solution with a strong base.
25.0 mL of M acetic acid Ka = 1.8 x 10-5 Titrant = M NaOH Third, Calculate the pH at some intermediate volume

32 Titration of a weak acid solution with a strong base.
25.0 mL of M acetic acid Ka = 1.8 x 10-5 Titrant = M NaOH Fourth, Calculate the pH at equivalence

33 Titration of a weak acid solution with a strong base.
25.0 mL of M acetic acid Ka = 1.8 x 10-5 Titrant = M NaOH Finally calculate the pH after the addition mL of NaOH

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