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Acid-Base Equilibria and Solubility Equilibria Chapter 16 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
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The common ion effect is the shift in equilibrium caused by the addition of a compound having an ion in common with the dissolved substance. The presence of a common ion suppresses the ionization of a weak acid or a weak base. Consider mixture of CH 3 COONa (strong electrolyte) and CH 3 COOH (weak acid). CH 3 COONa (s) Na + (aq) + CH 3 COO - (aq) CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) common ion 16.2
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What is the pH of a solution of 0.10 M CH 3 COOH and 0.20 M CH 3 COONa? Initial (M) Change (M) Equilibrium (M) 0.100.00 -x-x +x+x 0.10 - x 0.20 +x+x x0.20 + x x (0.20+x) 0.10 - x = 1.8 x 10 -5 Ka Ka 0.20x 0.10 = 1.8 x 10 -5 Assume x << 0.1 < 0.2 so 0.10 – x 0.10 and 0.20+x 0.20 K a << 1 x = 9.0 x 10 -6 M = [H + ] Common ion CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) Acid and conjugate base are present initially !! K a = [CH 3 COOH] [H + ][CH 3 COO - ] = pH = -log [H + ] = - log (9.0 x 10 -6 ) = 5.05 => acidic Assumption was good!
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What happens when a strong base or strong acid is added to a weak acid or weak base ? A solution initially contains 0.30 M CH 3 COOH and 0.20 M NaOH. What is the pH at equilibrium? => CH 3 COOH, Na +, OH -, H 2 O Weak acid K a =1.8 x 10 -5 Strong base Neutralization Reaction CH 3 COOH + OH - CH 3 COO - + H 2 O Start End 0.30 M 0.00 M0.20 M 0.10 M 0.20 M0.00 M K = 1/K b = K a / K w = 1.8 x 10 9 => Goes to completion
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Initial (M) Change (M) Equilibrium (M) 0.100.00 -x-x +x+x 0.10 - x 0.20 +x+x x0.20 + x x (0.20+x) 0.10 - x = 1.8 x 10 -5 Ka Ka 0.20x 0.10 = 1.8 x 10 -5 Assume x << 0.1 < 0.2 so 0.10 – x 0.10 and 0.20+x 0.20 K a << 1 x = 9.0 x 10 -6 M = [H + ] CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) K a = [CH 3 COOH] [H + ][CH 3 COO - ] = pH = -log [H + ] = - log (9.0 x 10 -6 ) = 5.05 => acidic Problem now become the same as the last problem. => CH 3 COOH, Na +, CH 3 COO -, H 2 O
![Initial (M) Change (M) Equilibrium (M) x-x +x+x x x+x x x x (0.20+x) x = 1.8 x Ka Ka 0.20x 0.10 = 1.8 x Assume x << 0.1 < 0.2 so 0.10 – x 0.10 and 0.20+x 0.20 K a << 1 x = 9.0 x M = [H + ] CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) K a = [CH 3 COOH] [H + ][CH 3 COO - ] = pH = -log [H + ] = - log (9.0 x ) = 5.05 => acidic Problem now become the same as the last problem.](http://images.slideplayer.com./32/9895715/slides/slide_5.jpg "=> CH 3 COOH, Na +, CH 3 COO -, H 2 O.")
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What happens if we now add 0.001 mole HCl to 1.00 L of a mixed acid/conjugate base solution? => H +, Cl -, CH 3 COOH, CH 3 COO -, Na +, H 2 O Strong Acid Neutralization Reaction CH 3 COO - + H + CH 3 COOH Start End 0.20 M 0.00 M0.101 M 0.199 M 0.001 mol = 1.00 L 0.0010 M 0.100 M K = 1/K a = 5.68 x 10 4 => Goes to completion => CH 3 COOH, CH 3 COO -, Cl -, Na +, H 2 O
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Initial (M) Change (M) Equilibrium (M) 0.1010.00 -x-x +x+x 0.101 - x 0.199 +x+x x0.199 + x x (0.199+x) 0.101 - x = 1.8 x 10 -5 Ka Ka 0.199x 0.101 = 1.8 x 10 -5 Assume x << 0.101 < 0.199 so 0.101 – x 0.101 and 0.199+x 0.199 K a << 1 x = 9.1 x 10 -6 M = [H + ] CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) K a = [CH 3 COOH] [H + ][CH 3 COO - ] = pH = -log [H + ] = - log (9.0 x 10 -6 ) = 5.04 => ΔpH = 0.01 Problem now becomes similar to the the last problem. If 0.001 M HCl was alone in a solution, what would the pH be? [H + ] = 1 x 10 -3 M => pH = 3
![Initial (M) Change (M) Equilibrium (M) x-x +x+x x x+x x x x (0.199+x) x = 1.8 x Ka Ka 0.199x = 1.8 x Assume x << < so – x and x K a << 1 x = 9.1 x M = [H + ] CH 3 COOH (aq) H + (aq) + CH 3 COO - (aq) K a = [CH 3 COOH] [H + ][CH 3 COO - ] = pH = -log [H + ] = - log (9.0 x ) = 5.04 => ΔpH = 0.01 Problem now becomes similar to the the last problem.](http://images.slideplayer.com./32/9895715/slides/slide_7.jpg "If M HCl was alone in a solution, what would the pH be. [H + ] = 1 x M => pH = 3.")
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Buffers A solution that is resistant to change in pH upon addition of small amounts of acid or base Mixture of weak acid - HX and its conjugate base - X - Buffer has: acidic species - neutralize base basic species to neutralize acid OH - + HX X - + H 2 O [X - ] [HX] constant => pH doesn’t change Examples: CH 3 COOH + CH 3 COO - CH 3 NH 2 + CH 3 NH 2 + H 2 PO 4 - + HPO 4 -2 acid conj. base
![Buffers A solution that is resistant to change in pH upon addition of small amounts of acid or base Mixture of weak acid - HX and its conjugate base - X - Buffer has: acidic species - neutralize base basic species to neutralize acid OH - + HX X - + H 2 O [X - ] [HX] constant => pH doesn’t change Examples: CH 3 COOH + CH 3 COO - CH 3 NH 2 + CH 3 NH 2 + H 2 PO HPO 4 -2 acid conj.](http://images.slideplayer.com./32/9895715/slides/slide_8.jpg "base.")
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