Fe^+2 (aq) + VO2^+ (aq) + 2H^+ ,,,,,,,,,,,,,,,,> VO^+2 + Fe^+3 (aq) + H2O(l)
Part-H
Eocell = E0 Cathode - E0 Anode
=1.00-0.77
= 0.23
Delta G0 = - nFE0
= -1x 96485 x0.23
= - 22192J
= -2.2x10^4J
com/mv Problem 20.51 K3 of3 Part G Write balanced chemical equation for the oxidation of Fe...
Given the following reduction half-reactions: Fe3+(aq)+e−→Fe2+(aq) E∘red=+0.77V S2O2−6(aq)+4H+(aq)+2e−→2H2SO3(aq) E∘red=+0.60V N2O(g)+2H+(aq)+2e−→N2(g)+H2O(l) E∘red=−1.77V VO+2(aq)+2H+(aq)+e−→VO2+(aq)+H2O(l) E∘red=+1.00V Part A Write balanced chemical equation for the oxidation of Fe2+(aq) by S2O2−6 (aq). Calculate the equilibrium constant K for this reaction at 298 K. Part B Write balanced chemical equation for the oxidation of Fe2+(aq) by N2O(g). Part C Write balanced chemical equation for the oxidation of Fe2+(aq) by VO+2(aq). Calculate the equilibrium constant K for this reaction at 298 K.
Given the following reduction half-reactions: Fe3+(aq)+e−→Fe2+(aq) E∘red=+0.77V S2O2−6(aq)+4H+(aq)+2e−→2H2SO3(aq) E∘red=+0.60V N2O(g)+2H+(aq)+2e−→N2(g)+H2O(l) E∘red=−1.77V VO+2(aq)+2H+(aq)+e−→VO2+(aq)+H2O(l) E∘red=+1.00V Write balanced chemical equation for the oxidation of Fe2+(aq) by S2O2−6(aq). Calculate ΔG∘ for this reaction at 298 K. Calculate the equilibrium constant Kfor this reaction at 298 K. Write balanced chemical equation for the oxidation of Fe2+(aq) by N2O(g). Calculate ΔG∘ for this reaction at 298 K. Calculate the equilibrium constant Kfor this reaction at 298 K. Write balanced chemical equation for the oxidation of Fe2+(aq)...
Part A Write the overall balanced equation for the reaction. 2+ Sn(a)Sn (aq) ||NO (g)NO, (aq), H (ag) Pt(e) (ag) +2 NO(a) + W0) 3 Sn(s) +NO3 (aq)+8H (aq)3Sn O Sn(a)+2 NO (aq)+ 4H* (aq)Sn (aq) + NO(a) + 2 H,0) O 3 Sn(s)+2 NO, (aq) +8H (aq) 3 Snt (ag) +2NOa)+4H,00) Sn(s)+NO3 (aq) +4H (aq) Sn (a4) + NO() +211,00) Request Answer Submit Part B Calculate Ecell VO AXD ? Ell V Request Answer Submit