7. The balanced chemical equation for the operating cell shown above is O MnO4 (aq) + 8 H"(aq) + 5 Fe2"(aq) 5 Fe3 (aq) + Mn2 (aq) +4 H2O(1) O2 MnO4 (aq) + 16 H'(aq) +5 Fe(s) - 5 Fe2 (aq) + 2 Mn2 (aq) +8 H20(1) O MnO2(aq) + 4 H"(aq) + 5 Fe(s) - 5 Fe2 (aq) + Mn2 (aq) +2 H2O(1) O5 Fe2*(aq) + Mn2 (aq) + 4 H2O(1) - 2 MnO4 (aq) + 16 H (aq) + 5 Fe(s) Balanced Equation 2 C2He(g) +7 O2(g) 4 CO2(g) +6 H20(g) 8. In the reaction above, what is the oxidizing agent and the number of electrons transferred The statement above is best completed by the answers in row. Row oxidizing agent electrons transferred O2 7. C2H6 C2H6 28 O2 28

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Salt Bridge
Ptis)
Fels)
KMnOalaq)
FeNO,laq)
In order for the cell shown above to produce a voltage of 1.96 V which of the
changes shown below must be made?
6.
DA porous cup must be used.
A platinum electrode must be placed in the half-cell on the right.
The half-cell on the left must be acidified.
O The chemical substance in the salt bridge must be KNO3(aq).
7.
The balanced chemical equation for the operating cell shown above is
O MnO4 (aq) + 8 H*(aq) +5 Fe2*(aq) - 5 Fe3 (aq) + Mn2*(aq) + 4 H20(1)
O2 MnO4 (aq) + 16 H*(aq) + 5 Fe(s) 5 Fe"(aq) + 2 Mn2*(aa) + 8 H>OD
Transcribed Image Text:Salt Bridge Ptis) Fels) KMnOalaq) FeNO,laq) In order for the cell shown above to produce a voltage of 1.96 V which of the changes shown below must be made? 6. DA porous cup must be used. A platinum electrode must be placed in the half-cell on the right. The half-cell on the left must be acidified. O The chemical substance in the salt bridge must be KNO3(aq). 7. The balanced chemical equation for the operating cell shown above is O MnO4 (aq) + 8 H*(aq) +5 Fe2*(aq) - 5 Fe3 (aq) + Mn2*(aq) + 4 H20(1) O2 MnO4 (aq) + 16 H*(aq) + 5 Fe(s) 5 Fe"(aq) + 2 Mn2*(aa) + 8 H>OD
7.
The balanced chemical equation for the operating cell shown above is
O MnO4 (aq) + 8 H*(aq) +5 Fe2*(aq) - 5 Fe (aq) + Mn2 (aq) + 4 H20(1)
O2 MnO4 (aq) + 16 H'(aq) + 5 Fe(s) - 5 Fe2"(aq) + 2 Mn2*(aq) + 8 H20(1)
O MnO2(aq) + 4 H*(aq) + 5 Fe(s) - 5 Fe2*(aq) + Mn2 (aq) + 2 H2O(1)
O5 Fe2*(aq) + Mn2 (aq) + 4 H2O(1) - 2 MnO4 (aq) + 16 H*(aq) + 5 Fe(s)
Balanced Equation
2 C2H6(g) +7 O2(g) - 4 CO2(g) + 6 H2O(g)
8.
In the reaction above, what is the oxidizing agent and the number of
electrons
transferred?
The statement above is best completed by the answers in row.
oxidizing agent
electrons transferred
Row
O2
7
C2H6
7
C2H6
28
O2
28
Transcribed Image Text:7. The balanced chemical equation for the operating cell shown above is O MnO4 (aq) + 8 H*(aq) +5 Fe2*(aq) - 5 Fe (aq) + Mn2 (aq) + 4 H20(1) O2 MnO4 (aq) + 16 H'(aq) + 5 Fe(s) - 5 Fe2"(aq) + 2 Mn2*(aq) + 8 H20(1) O MnO2(aq) + 4 H*(aq) + 5 Fe(s) - 5 Fe2*(aq) + Mn2 (aq) + 2 H2O(1) O5 Fe2*(aq) + Mn2 (aq) + 4 H2O(1) - 2 MnO4 (aq) + 16 H*(aq) + 5 Fe(s) Balanced Equation 2 C2H6(g) +7 O2(g) - 4 CO2(g) + 6 H2O(g) 8. In the reaction above, what is the oxidizing agent and the number of electrons transferred? The statement above is best completed by the answers in row. oxidizing agent electrons transferred Row O2 7 C2H6 7 C2H6 28 O2 28
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