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II III I C. Johannesson I. The Nature of Solutions Ch. 14 - Solutions
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C. Johannesson Definitions Solution - Solution - homogeneous mixture Solvent Solvent - present in greater amount Solute Solute - substance being dissolved
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C. Johannesson Definitions Solute Solute - KMnO 4 Solvent Solvent - H 2 O
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C. Johannesson Solvation Solvation – Solvation – the process of dissolving solute particles are separated and pulled into solution solute particles are surrounded by solvent particles
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C. Johannesson Solvation Strong Electrolyte Non- Electrolyte solute exists as ions only - + salt - + sugar solute exists as molecules only - + acetic acid Weak Electrolyte solute exists as ions and molecules DISSOCIATIONIONIZATION View animation online.animation
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C. Johannesson Solvation Dissociation separation of an ionic solid into aqueous ions NaCl(s) Na + (aq) + Cl – (aq)
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C. Johannesson Solvation Ionization breaking apart of some polar molecules into aqueous ions HNO 3 (aq) + H 2 O(l) H 3 O + (aq) + NO 3 – (aq)
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C. Johannesson Solvation Molecular Solvation molecules stay intact C 6 H 12 O 6 (s) C 6 H 12 O 6 (aq)
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C. Johannesson Solvation NONPOLAR POLAR “Like Dissolves Like”
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C. Johannesson Solvation Soap/Detergent polar “head” with long nonpolar “tail” dissolves nonpolar grease in polar water
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C. Johannesson Solubility SATURATED SOLUTION no more solute dissolves UNSATURATED SOLUTION more solute dissolves SUPERSATURATED SOLUTION becomes unstable, crystals form concentration
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C. Johannesson 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
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C. Johannesson Solubility Solubility Curve shows the dependence of solubility on temperature
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C. Johannesson 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
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II III I C. Johannesson II. Concentration Ch. 14 - Solutions
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C. Johannesson 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
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C. Johannesson Concentration SAWS Water Quality Report - June 2000
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C. Johannesson Molarity Must be in liters 1000 mL = 1 L
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C. Johannesson Molality mass of solvent only 1 kg water = 1 L water
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C. Johannesson Molality Find the molality of a solution containing 75 g of MgCl 2 in 250 mL of water. 75 g MgCl 2 1 mol MgCl 2 95.21 g MgCl 2 = 3.2 m MgCl 2 0.25 kg water
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C. Johannesson Molality How many grams of NaCl are req’d to make a 1.54m solution using 0.500 kg of water? 0.500 kg water1.54 mol NaCl 1 kg water = 45.0 g NaCl 58.44 g NaCl 1 mol NaCl
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C. Johannesson Dilution Preparation of a desired solution by adding water to a concentrate. Moles of solute remain the same.
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C. Johannesson Dilution What volume of 15.8M HNO 3 is required to make 250 mL of a 6.0M solution? GIVEN: M 1 = 15.8M V 1 = ? M 2 = 6.0M V 2 = 250 mL WORK: M 1 V 1 = M 2 V 2 (15.8M) V 1 = (6.0M)(250mL) V 1 = 95 mL of 15.8M HNO 3
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C. Johannesson Preparing Solutions 500 mL of 1.54M NaCl 500 mL water 45.0 g NaCl mass 45.0 g of NaCl add water until total volume is 500 mL mass 45.0 g of NaCl add 0.500 kg of water 500 mL mark 500 mL volumetric flask 1.54m NaCl in 0.500 kg of water
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C. Johannesson Preparing Solutions Copyright © 1995-1996 NT Curriculum Project, UW-Madison (above: “Filling the volumetric flask”)
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C. Johannesson Preparing Solutions Copyright © 1995-1996 NT Curriculum Project, UW-Madison (above: “Using your hand as a stopper”)
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C. Johannesson Preparing Solutions 250 mL of 6.0M HNO 3 by dilution measure 95 mL of 15.8M HNO 3 95 mL of 15.8M HNO 3 water for safety 250 mL mark combine with water until total volume is 250 mL Safety: “Do as you oughtta, add the acid to the watta!”
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C. Johannesson 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) 100.0 mL of 0.50M NaCl 2) 0.25m NaCl in 100.0 mL of water 3) 100.0 mL of 3.0M HCl from 12.1M concentrate.
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II III I C. Johannesson III. Colligative Properties Ch. 14 - Solutions
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C. Johannesson Definition Colligative Property property that depends on the concentration of solute particles, not their identity
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C. Johannesson Types Freezing Point Depression Freezing Point Depression ( t f ) f.p. of a solution is lower than f.p. of the pure solvent Boiling Point Elevation Boiling Point Elevation ( t b ) b.p. of a solution is higher than b.p. of the pure solvent
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C. Johannesson Types View Flash animation.Flash animation Freezing Point Depression
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C. Johannesson Types Solute particles weaken IMF in the solvent. Boiling Point Elevation
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C. Johannesson Types Applications salting icy roads making ice cream antifreeze cars (-64°C to 136°C) fish & insects
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C. Johannesson Calculations t :change in temperature (° C ) k :constant based on the solvent (° C·kg/mol ) m :molality ( m ) n :# of particles t = k · m · n
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C. Johannesson Calculations # of Particles Nonelectrolytes (covalent) remain intact when dissolved 1 particle Electrolytes (ionic) dissociate into ions when dissolved 2 or more particles
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C. Johannesson Calculations At what temperature will a solution that is composed of 0.73 moles of glucose in 225 g of phenol boil? m = 3.2m n = 1 t b = k b · m · n WORK: m = 0.73mol ÷ 0.225kg GIVEN: b.p. = ? t b = ? k b = 3.60°C·kg/mol t b = (3.60°C·kg/mol)(3.2m)(1) t b = 12°C b.p. = 181.8°C + 12°C b.p. = 194°C
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C. Johannesson Calculations Find the freezing point of a saturated solution of NaCl containing 28 g NaCl in 100. mL water. m = 4.8m n = 2 t f = k f · m · n WORK: m = 0.48mol ÷ 0.100kg GIVEN: f.p. = ? t f = ? k f = 1.86°C·kg/mol t f = (1.86°C·kg/mol)(4.8m)(2) t f = 18°C f.p. = 0.00°C - 18°C f.p. = -18°C
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