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Determine `DeltaG^@` and the value of the equlibrium constant for the following reaction occurring in an electrochemical cell at `25^@C`. Cu (s) + `2Ag^+ (aq) rarr Cu^(2+)(aq)+2Ag(s)` Given that `E_(Cu^(2+)//Cu)^@=0.34 V` and `E_(Ag^+//Ag)^@`=0.80V

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Determine DeltaG^(@) and the value of the equilibrium constant for the following reaction occurring in an electrochemical cell at 25^(@)C . Cu(s)+2Ag^(+)(aq)rarr Cu^(2+)(aq)+2Ag(s) Given that, E_(Cu^(2+)|Cu)^(@)=0.34V and E_(Ag^(+)|Ag)^(@)=0.80V

Calculate the value of equilibrium constant of the reaction occurring in Deniell cell at 25^(@)C . Given : E_(Zn^(2+)|Zn)^(@)=-0.76V and E_(Cu^(2+)|Cu)^(@)=+0.34V

Calculate the equilibrium constant and DeltaG^@ for the under written chemical reaction at 298K temperature. Ni(S) + 2Ag(aq) rarr Ni ^(2+)(aq) + 2Ag Given E^@ cell = 1.05 V.

It the reaction, 2Ag(s)+Fe^(2+)(aq)rarr2Ag^(+)(aq)+Fe(s) possible? Given : E_(Fe^(2+)|Fe)^(@)=-0.44V and E_(Ag^(+)|Ag)^(@)=+0.80V .

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Calculate the value of the equilibrium constant of the following reaction at 298 K: Given: E_(Cu^(2+)|Cu)^(@)=+0.34V and E_(Cl_(2)|2Cl^(-))^(@)=+1.36V

The following chemical reaction is occuring in an electrochemical cell: Mg(s)+2Ag^+(0.0001M) rarr Mg^(2+)(0.10M) +2Ag(s) The E^@ values for Mg^(2+)// Mg =-2.36V , Ag^+//Ag =0.81V for the cell calculate/ write Cell potential E_(cell)^@

Calculate DeltaG^@ in kJmol^(2+) and equilibrium constant for the following cell reaction: Zn(s)+Cu^(2+)(aq)harrCu(s)+Zn^(2+)(aq) [Give: E_(Zn^(2+)//Zn)^@=-0.76 V, E_(Cu^(2+)//Cu)^@=+0.34V,F=96500 C mol^(-1)]

Calculate the EMF of the electrochemical cell for which the following cell reaction is given below- Zx(S) + ni^(2_+)(aq) rarr Zn^(+2)(aq) + Ni(S) Given E_(zn^2//zn)^@ = - 0.76 V E_(Ni^(2+) // Nl) = - 0.25 V.

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UNITED BOOK HOUSE-HIGHER SECONDARY EXAMINATION 2016-EXERCISE
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  2. Arrange the following solutions in order of decreasing specific conduc...

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  3. Determine DeltaG^@ and the value of the equlibrium constant for the fo...

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