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प्रश्न
Calculate the electrode potentials of the following half cells at 298 K.
Co(s) | Co2+ (0.01 M)
Given: \[\ce{E^{\circ}_{Ag^+/Ag}}\] = +0.80 V, \[\ce{E^{\circ}_{{Co^{2+}/Co}}}\] = −0.28 V
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उत्तर
Given: The half cell is Co(s) | Co2+ (0.01 M)
Temperature = 298 K
Standard electrode potential for Co(s) | Co2+ is
\[\ce{E^{\circ}_{{Co^{2+}/Co}}}\] = −0.28 V
The nernst equation is E = `E^circ - 0.0591/n log Q`
The half reaction is \[\ce{Co{^{2+}_{(aq)}} + 2e- -> Co_{(s)}}\]
The number of electrons transferred, n, is 2.
Q = `1/([text(Co)^(2+)]` for the reduction reaction
Q = `1/0.01`
Substitute the values into the Nernst equation
E = `E^circ - 0.0591/n log Q`
E = `-0.28 - (0.0591/2) log (1/0.01)`
= `-0.28 - 0.0591/2 log(100)`
= `-0.028 - 0.0591/2 xx 2`
= −0.28 − 0.0591
E = −0.3391 V
