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Using the standard electrode potentials ...

Using the standard electrode potentials given in the Table 8.2, predict if the reaction between the following is feasible:
`Ag(s)` and `Fe^(3+)(aq)`

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To determine if the reaction between solid silver (Ag) and aqueous iron(III) ions (Fe³⁺) is feasible, we will analyze the standard electrode potentials of the two half-reactions involved. ### Step-by-Step Solution: 1. **Identify the Half-Reactions**: - The oxidation half-reaction for silver: \[ \text{Ag(s)} \rightarrow \text{Ag}^+(aq) + e^- ...
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Using the standard electrode potentials given, predict if the reaction between the following is feasible: Fe^(3+)(aq) and l^(-)(aq) Fe3+/Fe2+ : +0.77 V I-/I2 : -0.54 V

Using the standard electrode potential, find out the pair between which redox reaction is not feasible. E^(θ) values: Fe^(3+)//Fe^(2+)=0.77, I_(2)//I^(-)=+0.54 , Cu^(2+)//Cu=+0.34, Ag^(+)//Ag=+0.80V

Using the standard electrode potential, find out the pair between which redox reaction is not feasible. E^(@) values : Fe^(3+)//Fe^(2+)=+0.77, I_(2)//I^(-)=+0.54 V Cu^(2+)//Cu= + 0.34 V, Ag^(+)//Ag= +0.80 V

The more positive the value of E^(θ) , the greater is the trendency of the species to get reduced. Using the standard electrode potential of redox coples given below find out which of the following is the strongest oxidising agent. E^(θ) values: Fe^(3+)//Fe^(2+) = +0.77 I_(2)(s)//I^(-) = +0.54 , Cu^(2+)//Cu = +0.34, Ag^(+)//Ag = 0.80V

Calculate the standard cell potential (in V) of the cell in which following reaction takes place: Fe ^( 2 + ) ( aq ) + A g^ + ( aq ) to Fe ^( 3 + ) ( aq ) + Ag (s ) Given that E _ (Ag ^ + // Ag ) ^ 0 = x V , E _ ( Fe^( 2+ ) // Fe ) ^0 = yV , E _ (Fe^(3+)//F e )^0 = z V

Calculate the standard cell potentials of galvanic cell in which the following reactions take place : a. Cr(s) +3Cd^(2+)(aq) rarr 2Cr^(3+)(aq)+3Cd b. Fe^(2+)(aq)+Ag^(o+)(aq)rarr Fe^(3+)(aq)+Ag(s) Calculate the Delta_(r)G^(@) and equilibrium constant of the reactions .

The standard electrode potential for Deniell cell is 1.1V . Calculate the standard Gibbs energy for the reaction. Zn(s) +Cu^(2+)(aq) hArr Zn^(2+)(aq)+Cu(s)

ICSE-REDOX REACTIONS (OXIDATION AND REDUCTION)-NCERT TEXT-BOOK. EXERCISES ((With Hints and Solutions)
  1. Consider the elements : Cs ,Ne , I and F (a) Identify the element...

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  2. Consider the elements : Cs ,Ne , I and F (a) Identify the element...

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  3. Consider the elements : Cs ,Ne , I and F (a) Identify the element...

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  4. Consider the elements : Cs ,Ne , I and F (a) Identify the element...

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  5. Chlorine is used to purify drinking water. Excess of chlorine is harmf...

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  6. Refer to the periodic table given in your book and now answer the foll...

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  7. Refer to the periodic table given in your book and now answer the foll...

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  8. In Ostwald’s process for the manufacture of nitric acid, the first ste...

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  9. Using the standard electrode potentials given, predict if the reaction...

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  10. Using the standard electrode potentials given in the Table 8.2, predic...

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  11. Using the standard electrode potential, find out the pair between whic...

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  12. Using the standard electrode potentials given in the Table 8.2, predic...

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  13. Using the standard electrode potentials , predict if the reaction betw...

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  14. Predict the products of electrolysis in each of the following (i) an...

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  15. Predict the products of electrolysis in each of the following (i) an...

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  16. Predict the products of electrolysis in each of the following (i) an...

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  17. Predict the products of electrolysis in each of the following (i) an...

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  18. Arrange the following metals in the order in which they displace each ...

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  19. Given the standard electrode potentials , K^(+)//K = - 2.93 V , Ag^(...

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  20. Depict the galvanic cell in which the reaction Zn(s)+2Ag^(+)(aq)toZn...

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