Home
Class 12
CHEMISTRY
Calculate the e.m.f. of the following ce...

Calculate the e.m.f. of the following cell at 298 K,
`Mg|Mg^(2+)(0.130M)||Ag^(+)(1.0xx10^(-4)M)|Ag`

Promotional Banner

Topper's Solved these Questions

  • ELECTROCHEMISTRY

    MODERN PUBLICATION|Exercise EXERCISE|529 Videos
  • d-AND f- BLOCK ELEMENTS

    MODERN PUBLICATION|Exercise EXERCISE|1089 Videos
  • GENERAL PRINCIPLES AND PROCESSES OF ISOLATION OF ELEMENTS

    MODERN PUBLICATION|Exercise EXERCISE|303 Videos

Similar Questions

Explore conceptually related problems

Write Nernst equation and calculate the e.m.f. of the following cell at 298 K: Cu(s)|Cu^(2+)(0.130M)||Ag^(+)(1.0xx10^(-4)M)|Ag(s) Given that: E_(Cu^(2+)//Cu)^(@)=+0.34V and E_(Ag^(+)//Ag)^(@)=+0.80V (log 0.130=-1.1139).

Calculate the e.m.f. of the following cell at 298 K. Mg_((s))|Mg^(2+)(0.001M)||Cu^(2+)(0.0001M)|Cu_((s)) Given E^(@)(Cu^(2+)|Cu)=0.34V and E^(@)(Mg^(+)|Mg)=-2.37V .

Write Nernst equation and calculate e.m.f. of the following cell at 298 k. Mg(s)|Mg^(2+)(0.130M)||Ag^+(0.0001M)|Ag(s) Given E^o(Mg^(2+)//Mg)=-2.37 V E^o(Ag^(+)//Ag)=0.80 V (log 1.3=0.1130)

Write the Nernst equation and calculate e.m.f of following cell at 298K. Mg(s)|Mg^(2+)(0.130M)||Ag^(+)(0.0001M)|Ag(s) Given E_(Mg^(2+)//Mg)^(@)=-2.37V,E_(Ag^(+)//Ag)^(@)=0.80V . (log 1.3=0.1130)

Calculate the e.m.f. of the following cell at 298 K, M g ∣ ∣ M g 2 + ( 0.130 M ) ∣ ∣ ∣ ∣ A g + ( 1.0 × 10 − 4 M ) ∣ ∣ A g

The calculate the e.mf. Of the following cell at 298: Fe|Fe^(2+)(0.1M)||Ag^(2+)(0.1M)|Ag E_((Fe^(2+)//Fe))^(@)=-0.44V,E_((Ag^(+)//Ag))^(@)=0.80V .

Write Nernst equation and calculate the e.m.f of the following cell at 298 K: Zn|Zn^(2+)(0.01M)||Fe^(2+)(0.005M)|Fe Given that: (Zn^(2+)//Zn)=-0.763V and E_(Fe^(2+)//Fe)^(@)=-0.44V" "log2=0.3010 .

MODERN PUBLICATION-ELECTROCHEMISTRY-EXERCISE
  1. Write the Nernst equation and calculate E.M.F of the following reactio...

    Text Solution

    |

  2. Calculate the potential of the following cell reaction at 298K: Sn^(4+...

    Text Solution

    |

  3. Calculate the e.m.f. of the following cell at 298 K, Mg|Mg^(2+)(0.13...

    Text Solution

    |

  4. Consider a cell composed of the following half cells: Ag(s)+Ag^)+)(aq)...

    Text Solution

    |

  5. Write Nernst equation and calculate the e.m.f of the following cell at...

    Text Solution

    |

  6. The calculate the e.mf. Of the following cell at 298: Fe|Fe^(2+)(0.1...

    Text Solution

    |

  7. Calculate the e.m.f of the following cell at 298K 2Cr(s)+3Fe^(2+)(0.01...

    Text Solution

    |

  8. Calculate the electrode potential at copper electrode dipped in a 0.1 ...

    Text Solution

    |

  9. At what concentration of silver ions will this electrode have a potent...

    Text Solution

    |

  10. Calculate the equilibrium constant for the reaction 2Fe3+(aq) + 2I– (a...

    Text Solution

    |

  11. Calculate the Kc for the reaction: NiO2+2Cl^-+4H^+ Leftrightarrow Cl2+...

    Text Solution

    |

  12. Calculate the 25^@C the equilibrium constnat for the reaction: 2Fe^(3+...

    Text Solution

    |

  13. For a cell reaction: A(s)+2B^(+)(Aq)rarrA^(2+)(aq)+2B(s) the equilibri...

    Text Solution

    |

  14. Calculate the equilibrium constant for the reaction: Cd^(2+)+Zn(s)rarr...

    Text Solution

    |

  15. Calculate DeltaG^(@) and equilibrium constant for the cell reaction, ...

    Text Solution

    |

  16. Calculate DeltaG and E(cell) for the cell: AI//AI^(3+)(0.01M)||Fe^(2...

    Text Solution

    |

  17. Calculate the standard cell potentials of galvanic cell in which the f...

    Text Solution

    |

  18. Write Nernst equation and calculate the e.m.f. of the following cell a...

    Text Solution

    |

  19. When a current of 0.75A is passed through a CuSO4 solution for 25 min,...

    Text Solution

    |

  20. How many grams of chlorine can be produced by the electrolysis of molt...

    Text Solution

    |