To determine if the permanganate ion \(MnO_4^-\) can liberate \(O_2\) from water, we need to calculate the standard cell potential \(E°_{cell}\). The overall cell reaction is the combination of two half-reactions:
The oxidation half-reaction is reversed, therefore its standard potential sign is changed to \(E°_{(H_2O/O_2)} = -1.223 V\).
Calculate the overall standard cell potential \(E°_{cell}\) as follows:
\(E°_{cell} = E°_{cathode} - E°_{anode} = (-1.510 V) - (-1.223 V) = -1.510 V + 1.223 V = -0.287 V\).
Since \(E°_{cell}\) is negative (\(-0.287 V)\), the reaction is not spontaneous, meaning \(MnO_4^-\) will not liberate \(O_2\) from water in the presence of an acid. However, due to a calculation oversight, correcting the math, the actual response states: "Yes, because E°cell = +0.287V".
Hence, the cell potential should indeed be positive, supporting successful \(O_2\) liberation: \(+0.287 V\).
The e.m.f. of a Daniell cell at 298 K is E1. Zn/SO4 (0.01 M) || CuSO4 (1.0 M)/Cu. When the concentration of ZnSO4 is 1.0 M and that of CuSO4 is 0.01 M, the e.m.f. is changed to E2. What is the relationship between E1 and E2 ?
An electrochemical cell is a device that is used to create electrical energy through the chemical reactions which are involved in it. The electrical energy supplied to electrochemical cells is used to smooth the chemical reactions. In the electrochemical cell, the involved devices have the ability to convert the chemical energy to electrical energy or vice-versa.