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Calculate the pH of 2.0 x 10 -3 M HI. Acid-Base Equilibria.

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Presentation on theme: "Calculate the pH of 2.0 x 10 -3 M HI. Acid-Base Equilibria."— Presentation transcript:

1 Calculate the pH of 2.0 x 10 -3 M HI

2 Acid-Base Equilibria

3 Ionization of Water H 2 O (l)  H + (aq) + OH - (aq) 2 H 2 O (l)  H 3 O + (aq) + OH - (aq)

4 Water Ionization Constant K w = [H + ][OH - ] K w = [H 3 O + ][OH - ] K w = 1.00 x 10 -14 Memorize this

5 K w Calculations In pure water [H + ] = [OH - ] K w = [H + ][OH - ] = 1.0 x 10 -14 Let [H + ] = x = [OH - ]

6 K w Calculations K w = [H + ][OH - ] = x 2 K w = x 2 =1.0 x 10 -14 Thus x = 1.0 x 10 -7 M [H + ] = x = 1.0 x 10 -7 M

7 pH of Pure Water [H + ] = 1.0 x 10 -7 M pH = -log[H + ] pH = -log[1.0 x 10 -7 ] pH = 7 -log 1 Thus pH = 7.00

8 Calculate [H + ],[OH - ], pH, & pOH of 0.020 M HCl

9 Drill: Calculate [H + ],[OH - ], pH, & pOH of 0.0025 M KOH

10 Calculate [H + ],[OH - ], pH, & pOH of 0.050 M H 2 SO 4

11 Weak Acid Ionization HA (aq) H + (aq) + A - (aq) HA (aq) + H 2 O (l) H 3 O + (aq) + A - (aq)

12 Acid Dissociation Constant HA (aq) H + (aq) + A - (aq) [H + ][A - ] [HA] K a =

13 Calculate the pH of 3.3 x 10 -8 M HI

14 Weak Base Ionization NH 3 (aq) + H 2 O (l) NH 4 + (aq) + OH - (aq)

15 Base Dissociation Constant NH 3(aq) + H 2 O (l) NH 4 + (aq) + OH - (aq) [NH 4 + ][OH - ] [NH 3 ] K b =

16 Acid-Base Equilibria Problems

17 Calculate [H + ], [OH - ], pH, & pOH of 2.0 M HC 2 H 3 O 2 (HAc) K a = 1.8 x 10 -5

18 Calculate [H + ], [OH - ], pH, & pOH of 0.50 M NH 3 K b = 1.8 x 10 -5

19 Calculate [H + ], [OH - ], pH, & pOH of 0.50 M C 6 H 5 NH 2 K b = 3.2 x 10 -5

20 Calculate [H + ],[OH - ], pH, & pOH of 0.010 M HC 7 H 5 O 2 (HBz) K a = 6.4 x 10 -5

21 Calculate the K a of 0.10 M Hquack when it ionized 5.0 % in an aqueous solution.

22 Drill: The pH of a 0.79 M solution of Hnut is 3.10. Calculate its K a

23 Calculate the pH of a solution of 0.00050 M HBS : K a = 5.0 x 10 -12

24 Calculate the pH of 0.025 M HF: K a = 6.4 x 10 -4

25 Drill: Calculate the pH of 0.025 M QOH: K b = 2.0 x 10 -4

26 Calculate [H 2 CO 3 ], [HCO 3 - ], [CO 3 -2 ], [H + ],[OH - ], & pH of 0.44 M H 2 CO 3 K a1 = 4.4 x 10 -7 K a2 = 4.7 x 10 -11

27 Calculate the pH, & pOH of 0.10 M HClO K a = 2.5 x 10 -8

28 Drill: Calculate the pH of 0.25 M HAx K a = 2.5 x 10 -9

29 Review

30 Arhrenius Bronsted- Lowry Lewis

31 Show the ionization of HClO 4 in solution

32 Show the ionization of NH 3 in solution

33 Calculate the [H + ], [OH - ], pH, & pOH of 0.1 M HNO 3

34 Calculate the [H + ], [OH - ], pH, & pOH of 0.02 M NaOH

35 Calculate the pH, & pOH of 0.10 M HNO 2 K a = 6.0 x 10 -4

36 Calculate [H 2 A], [HA - ], [A -2 ], [H + ], & pH of 0.20 M H 2 A K a1 = 2.0 x 10 -7 K a2 = 5.0 x 10 -11

37 Calculate [H 3 A],[H 2 A - ], [HA -2 ],[A -3 ],[H + ], & pH of 0.30 M H 3 A K a1 = 3.0 x 10 -7 K a2 = 5.0 x 10 -11 K a3 = 4.0 x 10 -15

38 Drill: 831 mL NH 3 was bubbled through 2.0 L of water at 27.0 o C under 150 kPa pressure. 80.0 % of the ammonia reacted with the water. Calculate the pH of the final solution.


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