1. Use the calculation of Eº to determine which of the following reaction is spontaneous under standard conditions: (aq) a) AuCl4 (aq) + 3Fe²+ (aq) → Au(s) + 4C1 (aq) + 3 Fe³+ b) Cu + 2H - Cu²+ (aq) + H₂(g)

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Chapter1: Chemical Foundations
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Name.
Prelaboratory Assignment: Electrochemistry: Galvanic Cells and the Nernst
Equation
1. Use the calculation of Eº to determine which of the following reaction is spontaneous under
standard conditions:
a) AuCl( + 3Fe²+
(aq) (aq) → Au(s) + 4C1 (aq) (aq)
+3 Fe³+
b) Cus) + 2H* (aq) → Cu²+
(aq)
+ H₂(g)
2. Calculate Eº, AGº and K at 25°C for the reaction:
4C103 (aq)
→ CI +3C1O4 (aq)
(aq)
3. Calculate cell voltages under the following conditions at 25°C:
a) Zn | Zn²+ (0.50 M) Cu²+ (0.10 M) Cu
b) Pul Sn²+ (0.10 M) Sn** (0.10 M) Co²+ (0.201
(0.20 M) Co
Transcribed Image Text:Name. Prelaboratory Assignment: Electrochemistry: Galvanic Cells and the Nernst Equation 1. Use the calculation of Eº to determine which of the following reaction is spontaneous under standard conditions: a) AuCl( + 3Fe²+ (aq) (aq) → Au(s) + 4C1 (aq) (aq) +3 Fe³+ b) Cus) + 2H* (aq) → Cu²+ (aq) + H₂(g) 2. Calculate Eº, AGº and K at 25°C for the reaction: 4C103 (aq) → CI +3C1O4 (aq) (aq) 3. Calculate cell voltages under the following conditions at 25°C: a) Zn | Zn²+ (0.50 M) Cu²+ (0.10 M) Cu b) Pul Sn²+ (0.10 M) Sn** (0.10 M) Co²+ (0.201 (0.20 M) Co
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