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The Ion Product Constant for Water (Kw)
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Pure water dissociates according to the following reaction:
H2O(l) H+(aq) OH-(aq) There is an equal amount of H+ and OH- ions in solution (neutral, pH = 7) at 25°C [H+] = [OH-] = 1x10-7 mol/L equilibrium constant for the dissociation of water: Kw Kw = [H+][OH-] = (1x10-7)(1x10-7) = 1x10-14 * small k, reactants are favoured (does not go to completion)
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Since strong acids and bases dissociate completely in water, [H+] = [acid]
@ 25°C acids: [H+] > [OH-] [H+] > 1x10-7 [OH-] < 1x10-7 bases: [OH-] > [H+] [H+] < 1x10-7 [OH-] > 1x10-7 We can use Kw to calculate [H+] and [OH-] in solutions
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Ex 1) Find the [H+] and [OH-] in:
(a) 2.5 M nitric acid (b) M Barium hydroxide (a) HNO H NO3- C 2.5 M M Kw = [H+][OH-] [OH-] = Kw / [H+] = (1x10-14)/(2.5) = 4x10-15 M (b) Ba(OH) Ba OH- C 0.16 M M Kw = [H+][OH-] [H+] = Kw / [OH-] = (1x10-14)/(0.32) = 3.1x10-14 M
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pH and pOH pH: The Power of the Hydronium Ion
A measure of the amount of H+ ions in a solution Convenient way to represent acidity since [H3O+] is usually a very small number 2 factors determine pH ionization concentration because they both contribute to the number of H+ or OH- molecules in a solution. The practical scale goes from 0 14
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pH = -log [H3O+] pOH = -log [OH-]
In neutral water, pH = -log [H3O+] = -(log(1 x 10-7) = 7 pOH = -log [OH-] = -(log(1 x 10-7) = 7 Note: pH + pOH = 14, always, regardless of solution! Another way to calculate [H3O+] & [OH-] in solution: [H3O+] = 10-pH [OH-] = 10-pOH
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Ex) A liquid shampoo has a [OH-] of 6.8x10-5 mol/L
(a) Is the shampoo acid, basic or neutral? (b) What is [H3O+]? (c) What is the pH and pOH of the shampoo? (a) [OH-] = 6.8x > 1.0x10-7, basic (b) [H3O+] = Kw / [OH-] = (1.0x10-14)/(6.8x10-5) = 1.5x10-10 mol/L (c) pH = -log [H3O+] pOH = -log [OH-] = -log [1.5x10-10] = -log [6.8x10-5] = = 4.17 check: = 14 !
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HOMEWORK P382 #1-4 p390 #9-12 p392 #13-18
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