ΔG??= - n x?Ecell??x?F
ΔG??= standard Gibbs free energy
n?= number of electrons transferred in the reaction
Ecell??= standard cell potential (V)
F?= Faraday constant (96 500 C mol-1)

Answer
Fe3+?(aq) + e-?? Fe2+?(aq)? ? ? ??E??= +0.77 V
Cu2+?(aq) + 2e-?? Cu (s) ? ? ??E??= +0.34 V
Ecell??=?Ered??-?Eox?
= (+0.77) - (+0.34)
= +0.43 V
The Cu2+/Cu has a smaller?E??value which means that it gets?oxidised
It?transfers?two electrons to??two?Fe3+?ions
Each Fe3+?ion accepts one electron so the total number of electrons transferred is?two
ΔG??= - n x?Ecell??x?F
= -2 x (+0.43) x 96 500
= -82 990 J mol-1
= -83 kJ mol-1
轉載自savemyexams
以上就是關于【CIE A Level Chemistry復習筆記5.4.6 Standard Electrode Potentials: Free Energy Change】的解答,如需了解學校/賽事/課程動態,可至翰林教育官網獲取更多信息。
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