Calculate emf of the following cell Cd/Cd2+ (.10 M)//H+ (.20 M)/H2 (0

1.	Calculate emf of the following cell Cd/Cd2+ (.10 M)//H+ (.20 M)/H2 (0.5 atm)/Pt [Given E° for Cd2+ /Cd = -0.403 v]
Answer» E_cell= E°_cell – 0.0591/n Log [Cd²⁺]/ [H⁺]² E°_cell= 0 – (–.403 V) =0.403 V = 0.0403 – 0.0591/2 Log (0.10) X 0.5/(0.2)² = 0.400 V

Calculate emf of the following cell Cd/Cd2+ (.10 M)//H+ (.20 M)/H2 (0.5 atm)/Pt [Given E° for Cd2+ /Cd = -0.403 v]

Answer»

E_cell= E°_cell – 0.0591/n Log [Cd²⁺]/ [H⁺]²

E°_cell= 0 – (–.403 V) =0.403 V

= 0.0403 – 0.0591/2 Log (0.10) X 0.5/(0.2)² = 0.400 V

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Calculate emf of the following cell Cd/Cd2+ (.10 M)//H+ (.20 M)/H2 (0.5 atm)/Pt [Given E° for Cd2+ /Cd = -0.403 v]

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