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Calculate the emf of the cell in which t...

Calculate the emf of the cell in which the following reaction takes place. `Ni(s) + 2Ag^+ (0.002 M) rarr Ni^(2+)(0.16M) + 2Ag(s)` given that `E_(cell)^@ = 1.05V`

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Calculate the emf of the cell in which the following reaction takes place. Ni_(s) + 2Ag^+ (0.002 M) rarr Ni^(2+)(0.160M) + 2Ag_(s) Given that E_(cell)^@ = 1.05V

Calculate the emf of the cell at 298K, in which the following reaction takes place: Ni(s) + 2Ag^(+)(aq) (0.001M) rarr Ni^(2+)(aq) (0.160M) + 2Ag(s) (Given that E^@ cell = 1.05V )

Represent the cell in which the following rection takes place. Mg(s) + 2Ag^+(0.01M)rarr Mg^(2+)(0.140M)+2Ag(s) Write the Nemst equation and calculate the emf if the cell at 298K . Given E_(cell)^Theta=3.17V

Calculate the standard cell potential of the Galvanic cell in which the following reaction takes place: Fe^(2+)(aq) + Ag^+(aq) rarr Fe^(3+)(aq) + Ag(s) . Calculate the Delta_rG and equilibrium constant of the reactions.

Calculate the standard cell potential of the Galvanic cell in which the following reaction takes place: 2Cr(s) + 3Cd^(2+)(aq) rarr 2Cr^(3+)(aq) + 3Cd(s) Also calculate the DeltarG^@ value of the reaction. (Given: E_(Cr^(3+)//Cr) = -0.74V , E_(Cd^(2+)//Cd) = -0.40V and F =96500C//mol )

Calculate the standard cell potential of the Galvanic cell in which the following reaction takes place: 2Cr(s) + 3Cd^(2+)(aq) rarr 2Cr^(3+)(aq) + 3Cd(s) . Also calculate the Delta_rG and equilibrium constant of the reaction.

Calculate the equilibrium constant of the following reaction aty 298K. Cu(s)+2Ag^+(aq) rarr Cu^(2+)(aq)2Ag(s)~ Given E_(cell)^Theta=0.46V

In the button cells widely used in watches and other devices the following reaction takes place: Zn(s) + Ag_2O(s) + H_2O(l) rarr Zn^(2+)(aq) + 2Ag(s) + 2OH^(-) . Determine Delta_rG^@ and E^@ for the reaction.

Depict the Galvanic cell in which the reaction takes place as follows: Zn(s) + 2Ag^+(aq) to Zn(2+) + 2Ag(s) Individual reaction at each electrode.

Depict the Galvanic cell in which the reaction takes place as follows: Zn(s) + 2Ag^+(aq) to Zn(2+) + 2Ag(s) The carriers of the current in the cell.

ASSAM ACADEMIC CENTRE-Electro Chemistry -Example
  1. The molar conductances of NaCl, HCl and CH3COONa at infinite dilution ...

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  2. What is semiconductor? Mention the two main types of semiconductor.

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  3. Calculate the emf of the cell in which the following reaction takes pl...

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  4. Depict the Galvanic cell in which the reaction takes place as follows...

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  5. Depict the Galvanic cell in which the reaction takes place as follows...

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  6. Depict the Galvanic cell in which the reaction takes place as follows...

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  7. Write the Nernst equation and emf of the following cells at 298K. Mg(s...

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  8. Write the Nernst equation and emf of the following cells at 298K. Fe(s...

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  9. Write the Nernst equation and emf of the following cells at 298K. Sn(s...

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  10. Write the Nernst equation and emf of the following cells at 298K. pt(s...

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  11. How much charge is required for the following reductions: 1 mol of Al^...

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  12. How much charge is required for the following reductions: 1 mol of Cu^...

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  13. How much charge is required for the following reductions: 1 mol of MnO...

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  14. Write the Nernst equation and calculate the emf of the following at 29...

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  15. How do you explain with the help of graph, the increase in the value o...

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  16. Calculate the cell potential for the following cell-Pb//Pb^(2+)(1xx10^...

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  17. Calculate the charge in coulombs required for oxidation of 2 moles of ...

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  18. In the button cells widely used in watches and other devices the follo...

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  19. Give reason why does an alkaline medium inhibit the rusting of iron?

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  20. Give reason why does a dry cell become dead after long time even if ha...

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