The redox reaction in the question is missing. The reaction is :
Cl 2(g) + Mn 2 +(aq) + 2 H-On â 2 Cl-(aq) + MnO2(s) + 4 H + (aq)
2.59V. A redox reaction is also known as oxidation - reduction reaction. In redox reaction, there is a transfer of electrons between the species. In one species there is oxidation and in the other species there is reduction process.Cathode half reaction equation: Anode half reaction equation: E°cathode= 1.36V, E°anode= -1.23V, E°cell= E°cathode - E°anode, E°cell= 1.36 - (-1.23), E°cell= 2.59V
Initially, oxygen-based processes that include an element were referred to as oxidation. Example: The oxidation of magnesium occurs when magnesium metal reacts with oxygen to produce magnesium oxide.
A substance gains one or more electrons during the reduction process. Either an oxygen atom or electronegative atoms are lost. gains a hydrogen atom or an atom with an electric charge. Oxidation-reduction reactions are essential to many processes, including burning, bleaching, batteries, metallurgy, and photography. In electrochemical cells, oxidation-reduction processes are utilized extensively. (These cells must not be mixed up with real cells.
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