8.1 A piece of zinc (Zn) is placed in a test tube containing an acidified permanganate solution, MnO₄⁻ (aq) - NSC Physical Sciences - Question 8 - 2022 - Paper 2

In the context of this reaction, the permanganate ion (MnO₄⁻) acts as a stronger oxidizing agent compared to the zinc ions (Zn²⁺). This means that MnO₄⁻ can oxidize Zn to Zn²⁺ while being reduced itself to Mn²⁺. The tendency of MnO₄⁻ to accept electrons is greater than that of Zn, facilitating the redox process.

Component Y provides a path for the movement of ions, completing the circuit and ensuring electrical neutrality in the cell.

Electrons will flow from Ni to Mn in the external circuit.

The initial emf (E°) can be calculated using the standard reduction potentials of the half reactions. The equation is: $E°_{cell} = E°_{cathode} - E°_{anode}$ For this cell: E°_{cell} = 0.91 V - (-0.27 V) = 0.91 V + 0.27 V = 1.18 V.

The balanced cell reaction can be expressed as: $Zn (s) + 2MnO₄⁻ (aq) + 16H⁺ (aq) \rightarrow 2Mn²⁺ (aq) + Zn²⁺ (aq) + 8H₂O (l)$

The reading on the voltmeter will INCREASE. Increasing the concentration of Ni²⁺ enhances the driving force of the reaction, thus increasing the cell potential.