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1 Chapter 4 Aqueous solutions Types of reactions.

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1 1 Chapter 4 Aqueous solutions Types of reactions

2 2 Parts of Solutions l Solution- homogeneous mixture. l Solute- what gets dissolved. l Solvent- what does the dissolving. l Soluble- Can be dissolved. l Miscible- liquids dissolve in each other.

3 3 Aqueous solutions l Dissolved in water. l Water is a good solvent because the molecules are polar. l The oxygen atoms have a partial negative charge. l The hydrogen atoms have a partial positive charge. l The angle is 105ºC.

4 4 Hydration l The process of breaking the ions of salts apart. l Ions have charges and attract the opposite charges on the water molecules.

5 5 Hydration H H O H H O H H O H H O H H O H H O H H O H H O H H O

6 6 Solubility l How much of a substance will dissolve in a given amount of water. l Usually g/L l Varies greatly, but if they do dissolve the ions are separated, l and they can move around. l Water can also dissolve non-ionic compounds if they have polar bonds.

7 7 Electrolytes l Electricity is moving charges. l The ions that are dissolved can move. l Solutions of ionic compounds can conduct electricity. l This is why they’re called electrolytes. l Solutions are classified three ways.

8 8 Types of solutions l Strong electrolytes- completely dissociate (fall apart into ions). l Many ions- Conduct well. l Weak electrolytes- Partially fall apart into ions. l Few ions -Conduct electricity slightly. l Non-electrolytes- Don’t fall apart. l No ions- Don’t conduct.

9 9 Types of solutions l Acids- form H + ions when dissolved. l Strong acids fall apart completely. l many ions l H 2 SO 4 HNO 3 HCl HBr HI HClO 4 l Weak acids- don’t dissociate completely. l Bases - form OH - ions when dissolved. l Strong bases- many ions. l KOH NaOH

10 10 Measuring Solutions l Concentration- how much is dissolved. l Molarity = Moles of solute Liters of solution l abbreviated M l 1 M = 1 mol solute / 1 liter solution l Calculate the molarity of a solution with 34.6 g of NaCl dissolved in 125 mL of solution.

11 11 Molarity l How many grams of HCl would be required to make 50.0 mL of a 2.7 M solution? l What would the concentration be if you used 27g of CaCl 2 to make 500. mL of solution? l What is the concentration of each ion?

12 12 Molarity l Calculate the concentration of a solution made by dissolving 45.6 g of Fe 2 (SO 4 ) 3 to 475 mL. l What is the concentration of each ion?

13 13 Making solutions l Describe how to make 100.0 mL of a 1.0 M K 2 Cr 2 O 4 solution. l Describe how to make 250. mL of an 2.0 M copper (II) sulfate dihydrate solution.

14 14 Dilution l Adding more solvent to a known solution. l The moles of solute stay the same. l moles = M x L l M 1 V 1 = M 2 V 2 l moles = moles l Stock solution is a solution of known concentration used to make more dilute solutions

15 15 Dilution l What volume of a 1.7 M solutions is needed to make 250 mL of a 0.50 M solution? l 18.5 mL of 2.3 M HCl is added to 250 mL of water. What is the concentration of the solution? l 18.5 mL of 2.3 M HCl is diluted to 250 mL with water. What is the concentration of the solution?

16 16 Dilution l You have a 4.0 M stock solution. Describe how to make 1.0L of a.75 M solution. l 25 mL 0.67 M of H 2 SO 4 is added to 35 mL of 0.40 M CaCl 2. What mass CaSO 4 Is formed?

17 17 Types of Reactions  Precipitation reactions l When aqueous solutions of ionic compounds are poured together a solid forms. l A solid that forms from mixed solutions is a precipitate l If you’re not a part of the solution, your part of the precipitate

18 18 Precipitation reactions NaOH(aq) + FeCl 3 (aq)   NaCl(aq) + Fe(OH) 3 (s) l is really Na + (aq)+OH - (aq) + Fe +3 + Cl - (aq)   Na + (aq) + Cl - (aq) + Fe(OH) 3 (s) l So all that really happens is OH - (aq) + Fe +3  Fe(OH) 3 (s) l Double replacement reaction

19 19 Precipitation reaction l We can predict the products l Can only be certain by experimenting l The anion and cation switch partners AgNO 3 (aq) + KCl(aq)  Zn(NO 3 ) 2 (aq) + BaCr 2 O 7 (aq)  CdCl 2 (aq) + Na 2 S(aq) 

20 20 Precipitations Reactions l Only happen if one of the products is insoluble l Otherwise all the ions stay in solution- nothing has happened. l Need to memorize the rules for solubility (pg 152)

21 21 Solubility Rules  All nitrates are soluble  Alkali metal ions and NH 4 + ions are soluble  Halides are soluble except Ag +, Pb +2, and Hg 2 +2  Most sulfates are soluble, except Pb +2, Ba +2, Hg +2,and Ca +2

22 22 Solubility Rules  Most hydroxides are slightly soluble (insoluble) except NaOH and KOH  Sulfides, carbonates, chromates, and phosphates are insoluble  Lower number rules supersede so Na 2 S is soluble

23 23 Three Types of Equations l Molecular Equation- written as whole formulas, not the ions. K 2 CrO 4 (aq) + Ba(NO 3 ) 2 (aq)  l Complete Ionic equation show dissolved electrolytes as the ions. 2K + + CrO 4 -2 + Ba +2 + 2 NO 3 -  BaCrO 4 (s) + 2K + + 2 NO 3 - l Spectator ions are those that don’t react.

24 24 Three Type of Equations l Net Ionic equations show only those ions that react, not the spectator ions Ba +2 + CrO 4 -2  BaCrO 4 (s) l Write the three types of equations for the reactions when these solutions are mixed. l iron (III) sulfate and potassium sulfide Lead (II) nitrate and sulfuric acid.

25 25 Stoichiometry of Precipitation l Exactly the same, except you may have to figure out what the pieces are. l What mass of solid is formed when 100.00 mL of 0.100 M Barium chloride is mixed with 100.00 mL of 0.100 M sodium hydroxide? l What volume of 0.204 M HCl is needed to precipitate the silver from 50.ml of 0.0500 M silver nitrate solution ?

26 26 Types of Reactions  Acid-Base l For our purposes an acid is a proton donor. l a base is a proton acceptor usually OH - l What is the net ionic equation for the reaction of HCl(aq) and KOH(aq)? Acid + Base  salt + water H + + OH -  H 2 O

27 27 Acid - Base Reactions l Often called a neutralization reaction Because the acid neutralizes the base. l Often titrate to determine concentrations. l Solution of known concentration (titrant), l is added to the unknown (analyte), l until the equivalence point is reached where enough titrant has been added to neutralize it.

28 28 Titration l Where the indicator changes color is the endpoint. l Not always at the equivalence point. l A 50.00 mL sample of aqueous Ca(OH) 2 requires 34.66 mL of 0.0980 M Nitric acid for neutralization. What is [Ca(OH) 2 ]? l # of H + x M A x V A = # of OH - x M B x V B

29 29 Acid-Base Reaction l 75 mL of 0.25M HCl is mixed with 225 mL of 0.055 M Ba(OH) 2. What is the concentration of the excess H + or OH - ?

30 30 Types of Reaction  Oxidation-Reduction called Redox l Ionic compounds are formed through the transfer of electrons. l An Oxidation-reduction reaction involves the transfer of electrons. l We need a way of keeping track.

31 31 Oxidation States l A way of keeping track of the electrons. l Not necessarily true of what is in nature, but it works. l need the rules for assigning (memorize).  The oxidation state of elements in their standard states is zero.  Oxidation state for monoatomic ions are the same as their charge.

32 32 Oxidation states  Oxygen is assigned an oxidation state of - 2 in its covalent compounds except as a peroxide.  In compounds with nonmetals hydrogen is assigned the oxidation state +1.  In its compounds fluorine is always –1.  The sum of the oxidation states must be zero in compounds or equal the charge of the ion.

33 33 Oxidation States l Assign the oxidation states to each element in the following. l CO 2 l NO 3 - l H 2 SO 4 l Fe 2 O 3 l Fe 3 O 4

34 34 Oxidation-Reduction l Transfer electrons, so the oxidation states change. 2Na + Cl 2  2NaCl CH 4 + 2O 2  CO 2 + 2H 2 O l Oxidation is the loss of electrons. l Reduction is the gain of electrons. l OIL RIG l LEO GER

35 35 Oxidation-Reduction l Oxidation means an increase in oxidation state - lose electrons. l Reduction means a decrease in oxidation state - gain electrons. l The substance that is oxidized is called the reducing agent. l The substance that is reduced is called the oxidizing agent.

36 36 Redox Reactions

37 37 Agents l Oxidizing agent gets reduced. l Gains electrons. l More negative oxidation state. l Reducing agent gets oxidized. l Loses electrons. l More positive oxidation state.

38 38 Identify the l Oxidizing agent l Reducing agent l Substance oxidized l Substance reduced l in the following reactions Fe (s) + O 2 (g)  Fe 2 O 3 (s) Fe 2 O 3 (s)+ 3 CO(g)  2 Fe(l) + 3 CO 2 (g) SO 3 - + H + + MnO 4 -  SO 4 - + H 2 O + Mn +2

39 39 Half-Reactions l All redox reactions can be thought of as happening in two halves. l One produces electrons - Oxidation half. l The other requires electrons - Reduction half. l Write the half reactions for the following. Na + Cl 2  Na + + Cl - SO 3 - + H + + MnO 4 -  SO 4 - + H 2 O + Mn +2

40 40 Balancing Redox Equations l In aqueous solutions the key is the number of electrons produced must be the same as those required. l For reactions in acidic solution an 8 step procedure.  Write separate half reactions  For each half reaction balance all reactants except H and O  Balance O using H 2 O

41 41 Acidic Solution  Balance H using H +  Balance charge using e -  Multiply equations to make electrons equal  Add equations and cancel identical species  Check that charges and elements are balanced.

42 42 Practice l The following reactions occur in acidic solution. Balance them Cr(OH) 3 + OCl - + OH -   CrO 4 -2 + Cl - + H 2 O MnO 4 - + Fe +2  Mn +2 + Fe +3 Cu + NO 3 -  Cu +2 + NO(g) Pb + PbO 2 + SO 4 -2  PbSO 4 Mn +2 + NaBiO 3  Bi +3 + MnO 4 -

43 43 Now for a tough one Fe(CN) 6 -4 + MnO 4 -   Mn +2 + Fe +3 + CO 2 + NO 3 -

44 44 Basic Solution l Do everything you would with acid, but add one more step. l Add enough OH - to both sides to neutralize the H + CrI 3 + Cl 2  CrO 4 - + IO 4 - + Cl - Fe(OH) 2 + H 2 O 2  Fe(OH) -

45 45 Redox Titrations l Same as any other titration. l the permanganate ion is used often because it is its own indicator. MnO 4 - is purple, Mn +2 is colorless. When reaction solution remains clear, MnO 4 - is gone. l Chromate ion is also useful, but color change, orangish yellow to green, is harder to detect.

46 46 Example l The iron content of iron ore can be determined by titration with standard KMnO 4 solution. The iron ore is dissolved in excess HCl, and the iron reduced to Fe +2 ions. This solution is then titrated with KMnO 4 solution, producing Fe +3 and Mn +2 ions in acidic solution. If it requires 41.95 mL of 0.205 M KMnO 4 to titrate a solution made with 0.6128 g of iron ore, what percent of the ore was iron?

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