The cell notation below represents an electrochemical cell:
Cu/Cu²⁺ (1 mol·dm⁻³) // Ag⁺ (1 mol·dm⁻³) / Ag 298 K/25 °C
6.1.1 What energy conversion is taking place in the above cell?
6.1.2 Write down TWO indicators from the cell notation that prove that the cell is operating under standard conditions - NSC Technical Sciences - Question 6 - 2022 - Paper 2
Question 6
The cell notation below represents an electrochemical cell:
Cu/Cu²⁺ (1 mol·dm⁻³) // Ag⁺ (1 mol·dm⁻³) / Ag 298 K/25 °C
6.1.1 What energy conversion is taking place i... show full transcript
Worked Solution & Example Answer:The cell notation below represents an electrochemical cell:
Cu/Cu²⁺ (1 mol·dm⁻³) // Ag⁺ (1 mol·dm⁻³) / Ag 298 K/25 °C
6.1.1 What energy conversion is taking place in the above cell?
6.1.2 Write down TWO indicators from the cell notation that prove that the cell is operating under standard conditions - NSC Technical Sciences - Question 6 - 2022 - Paper 2
Step 1
6.1.1 What energy conversion is taking place in the above cell?
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Answer
The energy conversion occurring in the electrochemical cell is from chemical energy to electrical energy. This process is a hallmark of electrochemical reactions, wherein the oxidation and reduction reactions generate an electric current.
Step 2
6.1.2 Write down TWO indicators from the cell notation that prove that the cell is operating under standard conditions.
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Answer
The concentration of the electrolyte is specified as 1 mol·dm⁻³, which indicates standard concentration.
The temperature is provided as 298 K, representing standard temperature conditions.
Step 3
6.2.1 Cathode
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The balanced half-reaction at the cathode is:
ightarrow ext{Ag}(s)$$
Step 4
6.2.2 Anode
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The balanced half-reaction at the anode is:
ightarrow ext{Cu}^{2+}(aq) + 2e^-$$
Step 5
6.3 Use calculations to conclude whether the reaction is SPONTANEOUS or NON-SPONTANEOUS.
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To determine if the reaction is spontaneous, we can calculate the cell potential (E°cell) using:
E°cell=E°cathode−E°anode
Using the provided values:
For the cathode (Ag): E° = +0.80 V
For the anode (Cu): E° = +0.34 V
Now substituting the values:
E°cell=0.80V−0.34V=0.46V
Since E°cell is positive, the reaction is spontaneous.
Step 6
6.4 Give a reason for the answer to QUESTION 6.3.
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The reaction is spontaneous because the standard cell potential (E°cell) is positive, indicating that the electrochemical process can occur naturally without external energy input.