Use line notation to represent the electrochemical cells for each of the following overall redox reactions.
2Ag+(aq)+Pb(s)→2Ag(s)+Pb2+(aq)
2ClO2(g)+2I−(aq)→2ClO−2(aq)+I2(s)
O2(g)+4H+(aq)+2Zn(s)→2H2O(l)+2Zn2+(aq)
please help! thank you!!



Use line notation to represent the electrochemical cells for each of the following overall redox reactions....
Exercise 19.49 Use line notation to represent the electrochemical cells for each of the following overall redox reactions. Part A 2Ag+ (aq) + Pb(s) +2Ag(s) + PbP (o) O Ag(s) Ag+ (aq)||Pb2+ (aq) Pb(6) O Ag+ (aq) Ag(0) Pb(s)[Pb (4) O Pb2+ (aq)|Pb()||Ag()|Ag (og) O Pb(s)|Pb2+ (aq)||Ag+ (aq)|A6(*) Submit Request Answer Part B 2010 (8) +21 (aq) +2010, (4) +10) O Pt()CIO; () CIO,()||()T()Ps) Pt(s) C10(e) C10, (w) (0) (0) Pt(s) O POT" (aq) (||C10(e)C10; ()Pt(s) OPt()LOT ()||CO, (w) CIO,()PC)...
Calculate the standard cell potential for each of the electrochemical cells.2Ag+(aq)+ Pb(s)---> 2Ag(s) +Pb^2+(aq)Express your answer using two significant figures.Ecell=? V2ClO2(g)+2I-(aq)--->2ClO2-(aq)+I2(s)Express your answer using two significant figures.Ecell=?VO2(g)+4H+(aq)+2Zn(s)--> 2H20(l) + 2Zn2+(aq)Ecell=?V
- Write the reactions below in cell notation. a. 2Ag+ + Pb(s) + 2Ag(s) + Pb2+(aq) b. 20102(g) + 21 (aq) → 2C102 (aq) + 12(s) C. O2(g) + 4H+(aq) + 2Zn(s) → 2H2O(l) + 2Zn2+(aq)
An electrochemical cell is based on the following two half-reactions: Ox: Pb(s)→Pb2+(aq, 0.29 M )+2e− Red: MnO−4(aq, 1.30 M )+4H+(aq, 1.7 M )+3e−→ MnO2(s)+2H2O(l) show work
Which of the reactions below does not represent a redox reaction? 2 NaI (aq) + Br2 (l) → 2 NaBr (aq) + I2 (g) 2 NaCl (aq) + Pb(NO3)2 (aq) → PbCl2 (s) + 3 NaNO3 (aq) 3 Al (s) + 6 HCl (aq) → 3 H2 (g) + AlCl3 (aq) 2 H2O (l) → 2 H2 (g) + O2 (g) None of these
An electrochemical cell is based on the following two half-reactions: Ox: Pb(s)→Pb2+(aq, 0.26 M )+2e- Red: MnO-4(aq, 1.50 M )+4H+(aq, 2.7 M )+3e-→MnO2(s)+2H2O(l) Compute the cell potential at 25 ∘C.
An electrochemical cell is based on the following two half-reactions: Ox: Pb(s)→Pb2+(aq, 0.18 M )+2e− Red: MnO−4(aq, 1.65 M )+4H+(aq, 1.9 M )+3e−→ MnO2(s)+2H2O(l) Compute the cell potential at 25 ∘C.
2. Calculate the standard cell emf (cell potential) for electrochemical cells having the following overall cell reactions and predict if they are spontaneous: a) Sn(s) + Pb2+ (aq) → Sn?" (aq) + Pb(s) Eºcell = Volts. Spontaneous? b) 2002 (aq) + Zn?"(aq) → 2Co3+ (aq) + Zn(s) Eºcell__volts; Spontaneous? c) Cl2(g) + 2Br (aq) + 2Cl(aq) + Br2(1); E° = volts; Spontaneous?
Calculate Eºcell for each of the following balanced redox reactions. O2(g) + 2H2O(1) + 4Ag(s) + 40H(aq) + 4Ag+(aq) Express your answer using two significant figures. V AEON O 2 ? cell= Submit Request Answer Part B Br2(1) + 21 (aq) + 2Br (aq) + 12(s) Express your answer using two significant figures. IVO AQ o 2 ? Eºcell= Submit Request Answer Part C PbO2(s) + 4H+(aq) + Sn(s) → Pb2+(aq) + 2H2O(1) + Sn2+(aq) Express your answer using two...
Use tabulated half-cell potentials to calculate ΔG∘rxn for each of the following reactions at 25 ∘C. O2(g)+2H2O(l)+2Cu(s)→4OH−(aq)+2Cu2+(aq) Br2(l)+2I−(aq)→2Br−(aq)+I2(s)