Download presentation
Presentation is loading. Please wait.
1
I. The Nature of Solutions (p. 401 - 410, 425 - 433)
Ch. 13 & 14 - Solutions I. The Nature of Solutions (p , ) C. Johannesson
2
A. Definitions Solution - homogeneous mixture
Solute - substance being dissolved Solvent - present in greater amount C. Johannesson
3
A. Definitions Solute - KMnO4 Solvent - H2O C. Johannesson
4
B. Solvation First... Then... Solvation – the process of dissolving
solute particles are surrounded by solvent particles First... solute particles are separated and pulled into solution Then... C. Johannesson
5
B. Solvation Non- Electrolyte Weak Electrolyte Strong Electrolyte
+ sugar - + acetic acid - + salt Non- Electrolyte Weak Electrolyte Strong Electrolyte solute exists as molecules only solute exists as ions and molecules solute exists as ions only DISSOCIATION IONIZATION View animation online. C. Johannesson
6
NaCl(s) Na+(aq) + Cl–(aq)
B. Solvation Dissociation separation of an ionic solid into aqueous ions NaCl(s) Na+(aq) + Cl–(aq) C. Johannesson
7
HNO3(aq) + H2O(l) H3O+(aq) + NO3–(aq)
B. Solvation Ionization breaking apart of some polar molecules into aqueous ions HNO3(aq) + H2O(l) H3O+(aq) + NO3–(aq) C. Johannesson
8
B. Solvation C6H12O6(s) C6H12O6(aq) Molecular Solvation
molecules stay intact C6H12O6(s) C6H12O6(aq) C. Johannesson
9
B. Solvation “Like Dissolves Like” NONPOLAR POLAR C. Johannesson
10
B. Solvation Soap/Detergent polar “head” with long nonpolar “tail”
dissolves nonpolar grease in polar water C. Johannesson
11
C. Solubility UNSATURATED SOLUTION more solute dissolves
no more solute dissolves SUPERSATURATED SOLUTION becomes unstable, crystals form concentration C. Johannesson
12
C. Solubility Solubility
maximum grams of solute that will dissolve in 100 g of solvent at a given temperature varies with temp based on a saturated soln C. Johannesson
13
C. Solubility Solubility Curve
shows the dependence of solubility on temperature C. Johannesson
14
C. Solubility Solids are more soluble at... high temperatures.
Gases are more soluble at... low temperatures & high pressures (Henry’s Law). EX: nitrogen narcosis, the “bends,” soda C. Johannesson
15
Ch. 13 & 14 - Solutions II. Concentration (p. 412 - 418)
C. Johannesson
16
A. Concentration The amount of solute in a solution.
Describing Concentration % by mass - medicated creams % by volume - rubbing alcohol ppm, ppb - water contaminants molarity - used by chemists molality - used by chemists C. Johannesson
17
SAWS Water Quality Report - June 2000
A. Concentration SAWS Water Quality Report - June 2000 C. Johannesson
18
B. Molality mass of solvent only 1 kg water = 1 L water C. Johannesson
19
B. Molality Find the molality of a solution containing 75 g of MgCl2 in 250 mL of water. 75 g MgCl2 1 mol MgCl2 95.21 g MgCl2 0.25 kg water = 3.2m MgCl2 C. Johannesson
20
B. Molality How many grams of NaCl are req’d to make a 1.54m solution using kg of water? 0.500 kg water 1.54 mol NaCl 1 kg water 58.44 g NaCl 1 mol NaCl = 45.0 g NaCl C. Johannesson
21
C. Dilution Preparation of a desired solution by adding water to a concentrate. Moles of solute remain the same. C. Johannesson
22
C. Dilution What volume of 15.8M HNO3 is required to make 250 mL of a 6.0M solution? GIVEN: M1 = 15.8M V1 = ? M2 = 6.0M V2 = 250 mL WORK: M1 V1 = M2 V2 (15.8M) V1 = (6.0M)(250mL) V1 = 95 mL of 15.8M HNO3 C. Johannesson
23
D. Preparing Solutions 1.54m NaCl in 0.500 kg of water
500 mL of 1.54M NaCl mass 45.0 g of NaCl add water until total volume is 500 mL mass 45.0 g of NaCl add kg of water 500 mL water 45.0 g NaCl 500 mL mark volumetric flask C. Johannesson
24
D. Preparing Solutions Copyright © NT Curriculum Project, UW-Madison (above: “Filling the volumetric flask”) C. Johannesson
25
D. Preparing Solutions Copyright © NT Curriculum Project, UW-Madison (above: “Using your hand as a stopper”) C. Johannesson
26
D. Preparing Solutions 250 mL of 6.0M HNO3 by dilution
measure 95 mL of 15.8M HNO3 95 mL of 15.8M HNO3 combine with water until total volume is 250 mL 250 mL mark Safety: “Do as you oughtta, add the acid to the watta!” water for safety C. Johannesson
27
Solution Preparation Lab
Turn in one paper per team. Complete the following steps: A) Show the necessary calculations. B) Write out directions for preparing the solution. C) Prepare the solution. For each of the following solutions: 1) mL of 0.50M NaCl 2) 0.25m NaCl in mL of water 3) mL of 3.0M HCl from 12.1M concentrate. C. Johannesson
28
III. Colligative Properties (p. 436 - 446)
Ch. 13 & 14 - Solutions III. Colligative Properties (p ) C. Johannesson
29
A. Definition Colligative Property
property that depends on the concentration of solute particles, not their identity C. Johannesson
30
B. Types Freezing Point Depression (tf)
f.p. of a solution is lower than f.p. of the pure solvent Boiling Point Elevation (tb) b.p. of a solution is higher than b.p. of the pure solvent C. Johannesson
31
Freezing Point Depression
B. Types Freezing Point Depression View Flash animation. C. Johannesson
32
Boiling Point Elevation
B. Types Boiling Point Elevation Solute particles weaken IMF in the solvent. C. Johannesson
33
B. Types Applications salting icy roads making ice cream antifreeze
cars (-64°C to 136°C) fish & insects C. Johannesson
34
C. Calculations t: change in temperature (°C)
t = k · m · n t: change in temperature (°C) k: constant based on the solvent (°C·kg/mol) m: molality (m) n: # of particles C. Johannesson
35
C. Calculations # of Particles Nonelectrolytes (covalent)
remain intact when dissolved 1 particle Electrolytes (ionic) dissociate into ions when dissolved 2 or more particles C. Johannesson
36
C. Calculations At what temperature will a solution that is composed of 0.73 moles of glucose in 225 g of phenol boil? GIVEN: b.p. = ? tb = ? kb = 3.60°C·kg/mol WORK: m = 0.73mol ÷ 0.225kg tb = (3.60°C·kg/mol)(3.2m)(1) tb = 12°C b.p. = 181.8°C + 12°C b.p. = 194°C m = 3.2m n = 1 tb = kb · m · n C. Johannesson
37
C. Calculations Find the freezing point of a saturated solution of NaCl containing 28 g NaCl in 100. mL water. GIVEN: f.p. = ? tf = ? kf = 1.86°C·kg/mol WORK: m = 0.48mol ÷ 0.100kg tf = (1.86°C·kg/mol)(4.8m)(2) tf = 18°C f.p. = 0.00°C - 18°C f.p. = -18°C m = 4.8m n = 2 tf = kf · m · n C. Johannesson
38
I. Introduction to Acids & Bases (p. 453 - 473)
Ch. 15 & 16 - Acids & Bases I. Introduction to Acids & Bases (p ) C. Johannesson
39
A. Properties ACIDS BASES electrolytes electrolytes sour taste
bitter taste turn litmus red turn litmus blue react with metals to form H2 gas slippery feel vinegar, milk, soda, apples, citrus fruits ammonia, lye, antacid, baking soda C. Johannesson ChemASAP
40
Acids form hydronium ions (H3O+)
B. Definitions Arrhenius - In aqueous solution… Acids form hydronium ions (H3O+) HCl + H2O H3O+ + Cl– H Cl O – + acid C. Johannesson
41
Bases form hydroxide ions (OH-)
B. Definitions Arrhenius - In aqueous solution… Bases form hydroxide ions (OH-) NH3 + H2O NH4+ + OH- H N O – + base C. Johannesson
42
HCl + H2O Cl– + H3O+ B. Definitions acid conjugate base base
Brønsted-Lowry Acids are proton (H+) donors. Bases are proton (H+) acceptors. HCl + H2O Cl– + H3O+ acid conjugate base base conjugate acid C. Johannesson
43
B. Definitions H2O + HNO3 H3O+ + NO3– B A CA CB C. Johannesson
44
Amphoteric - can be an acid or a base.
B. Definitions NH3 + H2O NH4+ + OH- B A CA CB Amphoteric - can be an acid or a base. C. Johannesson
45
HF H3PO4 H3O+ F - H2PO4- H2O B. Definitions
Give the conjugate base for each of the following: HF H3PO4 H3O+ F - H2PO4- H2O Polyprotic - an acid with more than one H+ C. Johannesson
46
Give the conjugate acid for each of the following:
B. Definitions Give the conjugate acid for each of the following: Br - HSO4- CO32- HBr H2SO4 HCO3- C. Johannesson
47
B. Definitions Lewis Acids are electron pair acceptors.
Bases are electron pair donors. Lewis base Lewis acid C. Johannesson
48
C. Strength Strong Acid/Base 100% ionized in water strong electrolyte
- + HCl HNO3 H2SO4 HBr HI HClO4 NaOH KOH Ca(OH)2 Ba(OH)2 C. Johannesson
49
does not ionize completely
C. Strength Weak Acid/Base does not ionize completely weak electrolyte - + HF CH3COOH H3PO4 H2CO3 HCN NH3 C. Johannesson
50
Ch. 15 & 16 - Acids & Bases II. pH (p ) C. Johannesson
51
H2O + H2O H3O+ + OH- Kw = [H3O+][OH-] = 1.0 10-14
A. Ionization of Water H2O + H2O H3O+ + OH- Kw = [H3O+][OH-] = 1.0 10-14 C. Johannesson
![H2O + H2O H3O+ + OH- Kw = [H3O+][OH-] = 1.0 10-14](http://slideplayer.com./slide/6977102/24/images/51/H2O+%2B+H2O+H3O%2B+%2B+OH-+Kw+%3D+%5BH3O%2B%5D%5BOH-%5D+%3D+1.0+%EF%82%B4+10-14.jpg "A. Ionization of Water. H2O + H2O H3O+ + OH- Kw = [H3O+][OH-] = 1.0 C. Johannesson.")
52
A. Ionization of Water Find the hydroxide ion concentration of 3.0 10-2 M HCl. [H3O+][OH-] = 1.0 10-14 [3.0 10-2][OH-] = 1.0 10-14 [OH-] = 3.3 M Acidic or basic? Acidic C. Johannesson
![A. Ionization of Water Find the hydroxide ion concentration of 3.0 10-2 M HCl. [H3O+][OH-] = 1.0 ](http://slideplayer.com./slide/6977102/24/images/52/A.+Ionization+of+Water+Find+the+hydroxide+ion+concentration+of+3.0+%EF%82%B4+10-2+M+HCl.+%5BH3O%2B%5D%5BOH-%5D+%3D+1.0+%EF%82%B4.jpg "[3.0 10-2][OH-] = 1.0 [OH-] = 3.3 M. Acidic or basic Acidic. C. Johannesson.")
53
pouvoir hydrogène (Fr.)
B. pH Scale 14 7 INCREASING ACIDITY INCREASING BASICITY NEUTRAL pH = -log[H3O+] pouvoir hydrogène (Fr.) “hydrogen power” C. Johannesson
54
pH of Common Substances
B. pH Scale pH of Common Substances C. Johannesson
55
pH = -log[H3O+] pOH = -log[OH-] pH + pOH = 14
B. pH Scale pH = -log[H3O+] pOH = -log[OH-] pH + pOH = 14 C. Johannesson
![pH = -log[H3O+] pOH = -log[OH-] pH + pOH = 14](http://slideplayer.com./slide/6977102/24/images/55/pH+%3D+-log%5BH3O%2B%5D+pOH+%3D+-log%5BOH-%5D+pH+%2B+pOH+%3D+14.jpg "B. pH Scale. pH = -log[H3O+] pOH = -log[OH-] pH + pOH = 14. C. Johannesson.")
56
B. pH Scale What is the pH of 0.050 M HNO3? pH = -log[H3O+]
Acidic or basic? Acidic C. Johannesson
![B. pH Scale What is the pH of M HNO3 pH = -log[H3O+]](http://slideplayer.com./slide/6977102/24/images/56/B.+pH+Scale+What+is+the+pH+of+M+HNO3+pH+%3D+-log%5BH3O%2B%5D.jpg "Acidic or basic Acidic. C. Johannesson.")
57
B. pH Scale What is the molarity of HBr in a solution that has a pOH of 9.6? pH + pOH = 14 pH = 14 pH = 4.4 pH = -log[H3O+] 4.4 = -log[H3O+] -4.4 = log[H3O+] [H3O+] = 4.0 10-5 M HBr Acidic C. Johannesson
58
Ch. 15 & 16 - Acids & Bases III. Titration (p. 493 - 503)
C. Johannesson
59
A. Neutralization Chemical reaction between an acid and a base.
Products are a salt (ionic compound) and water. C. Johannesson
60
A. Neutralization ACID + BASE SALT + WATER
HCl + NaOH NaCl + H2O strong strong neutral HC2H3O2 + NaOH NaC2H3O2 + H2O weak strong basic Salts can be neutral, acidic, or basic. Neutralization does not mean pH = 7. C. Johannesson
61
B. Titration standard solution unknown solution Titration Analytical method in which a standard solution is used to determine the concentration of an unknown solution. C. Johannesson
62
B. Titration Equivalence point (endpoint)
Point at which equal amounts of H3O+ and OH- have been added. Determined by… indicator color change dramatic change in pH C. Johannesson
63
n: # of H+ ions in the acid or OH- ions in the base
B. Titration moles H3O+ = moles OH- MV n = MV n M: Molarity V: volume n: # of H+ ions in the acid or OH- ions in the base C. Johannesson
64
B. Titration 42.5 mL of 1.3M KOH are required to neutralize 50.0 mL of H2SO4. Find the molarity of H2SO4. H3O+ M = ? V = 50.0 mL n = 2 OH- M = 1.3M V = 42.5 mL n = 1 MV# = MV# M(50.0mL)(2) =(1.3M)(42.5mL)(1) M = 0.55M H2SO4 C. Johannesson
Similar presentations
