The voltaic cell in which the reduction reaction occurs.
What is a cathode?
Determine the change in the oxidation number of Hg and N:
2Hg2+(aq) + N2H4(aq) → 2Hg(l) + N2(g) + 4H+(aq)
A. Hg: 2+ to 0 B. N: –2 to 0
Given the following reaction and that the standard reduction potential of Zn2+ is –0.76V , determine the Eored for the reduction of Cu+2 to Cu
Zn(s) + Cu2+(aq) → Zn2+(aq) + Cu(s) Eocell = 1.10V
A: What is Anode: Cd(s) → Cd2+ (aq) + 2e-
Cathode: Sn2+ (aq) + 2e- → Sn(s)
In galvanic cell in which the following reaction occurs
Zn(s) + 2H+(g) → Zn2+ + H2(g)
the addition of H2SO4 to the cathode cell will cause the Eo to increase/decrease and shift the equilibrium to the reactants/products.
A: increase, products
Given: Mg2+ + 2e− → Mg Eº = −2.37 V
Fe3+ + 1e− → Fe2+ Eº = −0.77 V
When the reaction Mg + Fe3+ → Fe2+ + Mg2+ comes to equilibrium, the Ecell value becomes
A: What is 0.00 V
Determine in a galvanic cell in which cell the following reaction will occur: Zn(s) → Zn2+(aq) + 2e-
A: What is the reaction that occurs in the anode?
In the following balanced equation,
6I-(aq) + 14H3O+(aq) + Cr2O72-(aq) → 2Cr3+(aq) + 21H2O(l) + 3I2(s)
the reducing agent is
A: What is I1-
Given the following equation and standard reduction potentials, determine Eocell
Zn(s) + 2H+(aq) → Zn2+(aq) + H2(g)
2H+(aq) + 2e- → H2(g); Eored = 0.0 V
Zn2+(aq) + 2e- → Zn(s); Eored = –0.76V
What is Eocell = +0.76V
If a cell is created in which Q > K it will cause the E cell to increase/decrease and shift the equilibrium to the reactants/products.
A: What is decrease, reactants
Given the standard electrode potentials:
Ni2+ + 2e- → Ni (s) Eo = –0.23 V;
Cr3+ + 3e- → Cr (s) Eo = –0.74
Which pair of substances will react spontaneously?
A: What is Ni2+ with Cr
Ion that moves toward the anode from the salt bridge
A: What is anion?
Complete and balance the following half-reactions. Determine whether oxidation or reduction occurs.
TiO2 (s) → Ti2+ (aq) in an acidic solution
A: What is
TiO2(s) + 4H+ (aq) + 2e- → Ti2+ (aq) + 2H2O(l) reduction
Given the following reaction and that the standard reduction potential of Zn+2 is -0.76V , determine the Eored for the reduction of Cu+2 to Cu
Zn(s) + Cu2+(aq) ---> Zn2+(aq) + Cu(s)
Eocell=1.10V
What is 0.34V
Given that E°red = –0.40 V for Cd2+/Cd at 25°C, find E for the concentration cell expressed using shorthand notation below.
Cd(s) | Cd2+(1.0 × 10-5 M) || Cd2+(0.100 M) | Cd(s)
A: What is E = +0.12 V
In the electroplating of silver from cyanide solution, the cathode reaction is:
Ag(CN)2+ + e- → Ag(s) + 2CN-
How many grams of silver should be deposited by a current of 4.50 A in 28.0 minutes?
A: What is 8.45 g
In the following reaction, determine the electrode which gains mass:
Zn(s) +Cu2+(aq) → Zn2+(aq) + Cu(s)
A: What is the Cu (s) electrode.
Complete and balance the following half-reactions. Determine whether oxidation or reduction occurs.
MnO41- → MnO2
A: MnO41- + H2O → MnO2 + 4OH1-
Determine whether or not this reaction Cl2(g) +2I1- → I2(s) + 2Cl1-
is spontaneous given:
Cl2(g) + 2e- → 2Cl-(aq) Eo = +1.36V
2I-(aq) → I2(s) +2e- Eo = +0.54V
A: What is spontaneous?
Calculate the cell potential for the following reaction that takes place in an electrochemical cell at 25°C.
Sn(s) | Sn2+(aq, 1.8 M) || Ag+(aq, 0.055 M) | Ag(s)
Ag+ (aq) + e- → Ag (s) E° = +0.800 V
Sn2+ (aq) + 2 e- → Sn(s) E° = –0.14 V
A: What is +0.86 V
10.0 amps are passed through molten aluminum chloride for 5.50 hours. How many grams of aluminum metal could be produced by this electrolysis?
A: What is 18.5 g
Write the shorthand notation for the redox reaction given below.
Sn(s) + 2H+(aq) → Sn2+(aq) + H2(g)
A: Sn(s) | Sn2+(aq) || H+(aq) | H2(g) | Pt
Complete and balance the following half-reactions. Determine whether oxidation or reduction occurs. La(s) ---> La(OH)3 (s) in a basic solution
What is A. La(s) + 3OH- (aq) ---> La(OH)3 (s) + 3e- B. oxidation
Given the following Eored values, determine if NO3-, Ag+, or Cr2O72- is the strongest oxidizing agent
NO3- + 4H++3e- → NO + 2H2O; Eored = +0.96V
Ag+(aq) + e- → Ag(s); Eored = +0.80V
Cr2O72- +14H+ +6e- → 2Cr3++7H2O;Eocell = 1.33V
A: What is Cr2O72-?
What is the [Cu2+] in the cell Zn / Zn2+ (0.05 M) || Cu2+ (? M) / Cu
if the cell voltage is 1.03 V?
Zn2+ + 2e- → Zn Eo = –0.763 V Cu2+ + 2e- → Cu Eo = 0.337 V
A: What is A: 0.0002 M
Calculate ∆Go in kJ/mol for the reaction 4Ag(s) + O2(g) + 4H+ (aq) → 4Ag+(aq) + 2H20(l)
Given
O2(g) + 4H+(aq) + 4e- → 2H20(l); Eored = +1.23V
Ag+(aq) + e- → Ag(s) ; Eored= +0.80V
A: What is –170 kJ/mol