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Balance Redox Rxns: Fe(OH) 3 + [Cr(OH) 4 ] -1 Fe(OH) 2 + CrO 4 -2.

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Presentation on theme: "Balance Redox Rxns: Fe(OH) 3 + [Cr(OH) 4 ] -1 Fe(OH) 2 + CrO 4 -2."— Presentation transcript:

1 Balance Redox Rxns: Fe(OH) 3 + [Cr(OH) 4 ] -1 Fe(OH) 2 + CrO 4 -2

2 Review & Collect Drill & HW

3 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

4 Next Test Early next week

5 Electro- chemistry

6 Metallic Conduction The flow of electrons through a metal

7 Ionic Conduction The movement of ions (electrolytes) through a solution Electrolytic Conduct.

8 Electrode The surface or point in which oxidation or reduction takes place

9 Anode The electrode where oxidation takes place An Ox (-)

10 Cathode The electrode where reduction takes place Red Cat (+)

11 Voltaic or Galvanic Cell Electrochemical Cell in which:

12 a spontaneous oxidation-reduction reaction produces electrical energy

13 Voltaic or Galvanic Cell Batteries are made up of VCs

14 Half-Cell A cell where either oxidation or reduction takes place

15 A half-cell will not work by itself Both half-cells are required

16 An electrochemical cell must have two half-cells connected by a salt bridge

17 Salt Bridge 1) Allows electrical contact between the two half-cells

18 2) Prevents mixing of the two half- cell solutions

19 3) Allows ions to flow maintaining electrical neutrality

20 Draw a Voltaic Cell made up of two half-cells

21 Drill: Define Each Oxidation Reduction Anode Cathode

22 Review & Collect Drill & HW

23 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

24 Distribute Periodic Tables

25 Determining the Redox Rxn & Voltage of an Electrochemical Cell

26 1) List all species (molecules, elements, & ions) (reactants) that exist in each cell

27 2a) From the Redox Tables write all possible half- reactions that could occur in the system

28 2b ) Record the voltage for each half-rxn. If rxn is reversed, change sign.

29 3) Label the oxidation half- rxn that has the highest voltage

30 4) Label the reduction half- rxn that has the highest voltage

31 5) Balance the electrons between the two half-rxns

32 6a) Add the two half-rxns to obtain the full electrochemical reaction

33 6b) Add the voltage of each half-rxn to obtain the std. voltage required

34 Determine E o Zn (s) + 2 Ag +1 (aq) 2 Ag (s) + Zn +2 (aq)

35 REDOX Shorthand Zn|Zn +2 ||Ag +1 |Ag ox red Zn||Zn|Zn +2 ||Ag +1 |Ag||Ag an ox red cat

36 Drill: Determine Shorthand Rxn & voltage when Cu +1 is reacts with solid potassium

37 Voltaic Cell Problems

38 Determine all when a cell with a Cu electrode in CuCl 2(aq) is connected to a cell with a Zn electrode in ZnBr 2(aq)

39 Drill: Determine all species that could react when a cell with an Fe electrode in FeCl 3(aq) is connected to a cell with a Mn electrode in MnCl 2(aq)

40 Review & Collect Drill & HW

41 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

42 Next Test: Tuesday or Wednesday

43 Distribute Periodic Tables

44 Determine all when a cell with a Fe electrode in FeCl 3(aq) is connected to a cell with a Mn electrode in MnCl 2(aq)

45 Drill: Determine all species that could react when a cell with an Fe electrode in FeCl 2(aq) is connected to a cell with a Mg electrode in MgCl 2(aq)

46 Review & Collect Drill & HW

47

48 Determine all when a cell with a Mg electrode in MgCl 2(aq) is connected to a cell with a Au electrode in AuCl 3(aq)

49 Determine all when a cell with a Cd electrode in CdCl 2(aq) is connected to a cell with a Cu electrode in CuI (aq)

50 What could happen if you dissolve AuCl 3 in water?

51 Drill: A voltaic cell is made up of a iron electrode in an aqueous of FeI 2 in one chamber & a copper electrode in an aqueous CuBr 2. Determine all of the substances that could be reactants in this system.

52 Review & Collect Drill & HW

53 Calendar Lab: Monday Review: Tuesday Test: Wednesday

54 Distribute Periodic Tables

55 A voltaic cell is made up of a iron electrode in an aqueous of FeI 2 in one chamber & a copper electrode in an aqueous CuBr 2. Determine all in this system.

56 Drill: Determine all species that could react when a cell with an Cr electrode in CrBr 3(aq) is connected to a cell with a Sn electrode in SnI 2(aq)

57 Review & Collect Drill & HW

58 Calendar Review: Monday Lab: Tuesday Test: Wednesday

59 Distribute Periodic Tables

60 Determine all when a cell with an chromium electrode in CrBr 3(aq) is connected to a cell with a tin electrode in SnI 2(aq)

61 Using the standard Reduction Potential Table, determine the element that is the strongest reducing agent, & the one that ic the strongest oxidizing agent.

62 Balance Redox Rxn: SnO 2 + S 8 SnO + SO 2 in acid

63 Balance Redox Rxn: N 2 O 3 + K 2 CrO 4 KNO 3 + Cr +3 in base

64 Balance Redox Rxn: SO + H 2 Cr 2 O 7 H 2 SO 4 + Cr +2

65 Drill: What is the best reducing agent and the best oxidizing agent on the chart?

66 Review Drill & Test

67 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

68 Extremely Important Electrochemical Reactions

69 Lead Sulfate Battery Pb + SO 4 -2  PbSO 4 + 2e - E o = 1.7 V PbO 2 + 4H + + 2e -  PbSO 4 + H 2 O E o = 0.3 V Pb + PbO 2 + 4H + SO 4 -2  2 PbSO 4 + H 2 O E o = 2.0 V

70 Iron Rusting 2Fe  2Fe +2 + 4e - O 2 + 2H 2 O + 4e -  4OH - 2Fe + O 2 + 2H 2 O  2Fe +2 + 4OH -

71 Relating Equations  G o =  H o - T  S o  G o = -RTlnK eq  G o = -nF E o

72 Determine rxn, E o,  G o, & K eq for a voltaic cell with half- cells containing Ni (s) in NiCl 2(aq) & Sn (s) in SnCl 2(aq).

73 Nernst Equation E = E o - (RT/nF)lnQ for non-standard conditions

74 Determine the voltage of a cell with a silver electrode in 1.0 M AgNO 3 & a zinc electrode in 0.010 M ZnCl 2 at 27 o C

75 Drill: Determine the voltage of a cell with an aluminum electrode in 1.0 M AlCl 3 & a zinc electrode in 0.010 M ZnCl 2 at 27 o C

76 Review & Collect Drill & HW

77 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

78 Distribute Periodic Tables

79 Determine the voltage of a cell with an calcium electrode in 1.0 M CaCl 2 & a silver electrode in 0.010 M AgBr at 27 o C

80 Typical Dry Cell Battery

81 Electrolysis Using electricity to force a non- spontaneous electrochemical rxn

82 Electrolytic Cell Chemical cell where electrolysis is being performed

83 How to determine everything in an electrolytic cell

84 1) List all species (molecules, elements, & ions) (reactants) that exist in each cell

85 2a) From the Redox Tables write all possible half- reactions that could occur in the system

86 2b ) Record the voltage for each half-rxn. If rxn is reversed, change sign.

87 3) Label the oxidation half- rxn that has the highest voltage

88 4) Label the reduction half- rxn that has the highest voltage

89 5) Balance the electrons between the two half-rxns

90 6a) Add the two half-rxns to obtain the full electrochemical reaction

91 6b) Add the voltage of each half-rxn to obtain the std. voltage required

92 Determine the rxn that takes place when 1.5 V is passed through two Pt electrodes in a solution containing MgI 2(aq) & ZnCl 2(aq)

93 Determine the rxn that takes place when 4.0 V is passed through two Pt electrode in a solution of NaCl (aq)

94 Determine the rxn that takes place when electricity is passed through two Pt electrode in molten NaCl

95 Drill: Determine all species that could react when electricity is passed through two Pt electrode in a solution containing CaCl 2(aq) & FeF 2(aq)

96 Review & Collect Drill & HW

97 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

98 The last lab is due tomorrow

99 Distribute Periodic Tables

100 More Electrolytic Problems

101 Determine the rxns that take place when 2.0 V of electricity is passed through two Pt electrode in a solution containing CaCl 2(aq) & FeF 2(aq)

102 Determine the rxns that takes place when 1.8 V of electricity is passed through two Pt electrodes in ZnCl 2(aq)

103 Determine the rxns that takes place when 2.0 V of electricity is passed through two Pt electrodes in ZnCl 2(aq)

104 Determine the voltage of a cell with a silver electrode in 1.0 M AgNO 3 & an iron electrode in 0.10 M FeCl 2 at 27 o C

105 Drill: Determine all species that could react when electricity is passed through two Pt electrode in a solution containing CaCl 2(aq) & MgF 2(aq)

106 Review & Collect Drill & HW

107 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

108 Collect Lab

109 Determine all the reactions that take place when electricity is passed through two Pt electrode in a solution containing CaCl 2(aq) & MgF 2(aq)

110 Electroplating & Electro-purifying

111 Electrolysis During electrolysis, oxidation & degradation would occur at the anode while reduction & electroplating would occur at the cathode

112 Power Supply Anode Cathode Impure Metal Pure Metal Metal salt solution

113 Standard Unit of Electricity Amphere (A) 1 Amp = 1 coulomb/sec

114 Unit of Electric Charge Coulomb (C) The amount of any electroplating can be determined from coulombs because the charge of an electron is known

115 Faraday’s Constant The charge of 1 mole of electrons ~96500 C

116 Electroplating Formula Charge = current x time Mass can be determined from the charge

117 Determine the mass of copper plated onto the cathode when 9.65 mA is passed for 2.5 Hrs through two Cu electrodes in a solution containing CuCl 2(aq)

118 Determine the voltage of a cell with a copper electrode in 0.10 M CuI & a zinc electrode in 1.0 M ZnCl 2 at 27 o C

119 Determine the voltage of a cell with a silver electrode in 0.10 M AgNO 3 & a zinc electrode in 1.0 M ZnCl 2 at 27 o C

120 The test on electrochemistry will be on ____day.

121 Current Formula Current = charge/unit time Amps = coul/sec Amount (mass, volume, moles, etc) can be determined from the charge

122 Calculate the mass of copper plated onto the cathode when a 9.65 mAmp current is applied to a solution of CuSO 4 for 5.0 minutes.

123 Calculate the years required to plate 216 kg of silver onto the cathode when a 96.5 mAmp current is applied to a solution of AgNO 3

124 Drill: Calculate the current required to purify 510 kg of aluminum oxide in 5.0 hours

125 Check HW

126 Test Tuesday

127 Balance the Rxn KMnO 4 + HCl MnO 2 + KClO 2

128 Calculate the time required to electroplate 19.7 mg of gold onto a plate by passing 965 mA current through a solution of Au(NO 3 ) 3

129 Determine the voltage of a cell with a silver electrode in 5.0 M AgNO 3 & an zinc electrode in 0.25 M ZnCl 2 at 27 o C

130 Determine the rxn that takes place when 1.0 V is passed through two Pt electrodes in a soln containing NaI (aq) & CoCl 2(aq).

131 Calculate the time required to purify a 204 kg of ore that is 60.0 % Al 2 O 3 by applying a 965 kA current through molten ore sample:

132 Drill: Aluminum ore is purified by electrolysis. Calculate the time required to purify a 51 kg of ore that is 75.0 % Al 2 O 3 by applying a 9.65 kA current through molten ore sample:

133 Review & Collect Drill & HW

134 CHM II HW: Review PP-28 Complete the attached assignment & turn it in tomorrow.

135 Calculate the time required to gold plate a 0.20 mm layer onto a plate (SA = 750 cm 2 ) by passing 965 mA current through a solution of AuCl 3 (D Au = 20 g/cm 3 )

136 Current, Mass, Time Formula: Saul’s Rule nFm = MWIt

137 A voltaic cell with a silver electrode in 0.10 M Ag + & a zinc electrode in 1.0 M Zn +2 at 27 o C is allowed to react for 5.0 mins at 9.65 A. Calculate: E o, E,  G o, & mass increase of the cathode.

138 A voltaic cell with a gold electrode in 0.0010 M Au +3 & a zinc electrode in 10.0 M Zn +2 at 27 o C is allowed to react for 5.0 hrs at 9.65 A. Calculate: E o, E,  G o, & mass increase of the cathode.


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