Write the shorthand cell notation for each of the following reactions:
a. Cu(s) + 2Fe3+(aq) → Cu2+(aq) + 2Fe2+(aq)
b. 2Cl- (aq) + 2Fe3+(aq) → Cl2(g) + 2Fe2+(aq)
Write the shorthand cell notation for each of the following reactions: a. Cu(s) + 2Fe3+(aq) →...
Consider the following cell diagram: Pt(s) | Fe3+(aq) , Fe2+(aq) || Cl–(aq) | Cl2(g) | Pt(s) The reaction utilized by this cell is Question 8 options: Fe2+(aq) + 2Cl–(aq) --> Fe(s) + Cl2(g) Fe(s) + Cl2(g) --> Fe2+(aq) + 2Cl–(aq) 2Fe3+(aq) + 2Cl–(aq) --> 2Fe2+(aq) + Cl2(g) Fe3+(aq) + Cl–(aq) --> Fe2+(aq) + 1/2Cl2(g) 2Fe2+(aq) + Cl2(g) --> 2Fe3+(aq) + 2Cl–(aq)
Complete the half-reactions for the cell shown, and show the correct shorthand notation for the cell. The electrode on the left is the anode, and the one on the right is the cathode. Anode half-reaction: +20H = D. +2 Cathode half-reaction: ********* 2 2 *****720H Shorthand notation: Cu(OH)2(s)- bcccc -C(OH)2(s) Answer Bank KOH(aq) CO(OH),(s) Co(s) KOH(aq) Cu(s) Cu(OH),(s)
What is the shorthand notation that represents the following galvanic cell reaction? Sn2+(aq) + Cl2(g) → Sn3+(aq) + 2 Cl-(aq) A) Pt(s) ∣ Sn2+(aq), Sn3+(aq) ∣∣ Cl2(g) ∣ Cl-(aq) ∣ C(s) B) Sn(s) ∣ Sn2+(aq) ∣∣ Sn4+(aq) Cl2(g) ∣ Cl-(aq) ∣ C(s) C) Pt(s) ∣ Sn4+(aq), Sn2+(aq), Cl2(g) ∣∣ Cl-(aq) ∣ C(s) D) Sn2+(aq) ∣ Sn3+(aq) ∣∣ Cl2(g) ∣ Cl-(aq)
Consider the galvanic cell that uses the reaction 2 Ag^+ (aq) + Cu(s) rightarrow Cu^2+ (aq) + 2 Ag (s) Clearly sketch the experimental set-up, write down the anode and cathode half-reactions, and give the shorthand notation for the cell.
1.) Given the following notation for an electrochemical cell Pt(s) | H2(g) | H+(aq) || Ag+(aq) | Ag(s), what is the balanced overall (net) cell reaction? A. H2(g) + 2Ag(s) ® H+(aq) + 2Ag+(aq B. H2(g) + 2Ag+(aq) ® 2H+(aq) + 2Ag(s) C. H2(g) + Ag+(aq) ® H+(aq) + Ag(s D. 2H+(aq) + 2Ag(s) ® H2(g) + 2Ag+(aq) E. 2H+(aq) + 2Ag+(aq) ® H2(g) + 2Ag(s) 2.) Calculate E°cell for the following (nonspontaneous) reaction: Cd(s) + 2Fe3+(aq) ® 2Fe2+(aq) + Cd2+(aq) → A. -0.37...
Complete the half-reactions for the cell shown, and show the shorthand notation for the cell. The electrode on the left is the anode, and the one on the right is the cathode. Anode half-reaction: РЫ Ag Pb(s) + 2 C1PCI () + 2e- Cathode half-reaction: AgCl(s) 2 AgCl(s) + 2e- Ag(s) + 2 C1- PbCI,() KCl(aq) KCl(aq) Shorthand notation: PbCl(s) Pb(s) Cl(aq) Cl(aq) Agcis) Ag(s) Answer Bank 2 AgCl(s) Pb(s) Cl(aq) AgCl(s) 2 Ag(s) PbCl () Ag(s) Incorrect
For the reaction Ni2+(aq) + 2Fe2+(aq) ? Ni(s) + 2Fe3+(aq), the standard cell potential E°cell is A. +2.81 V.B. +1.02 V.C. +0.52 V.D. -1.02 V.E. -2.81 V.Please show your steps, thank you :)
Question 14 of 31) Complete the half-reactions for the cell shown, and show the correct shorthand notation for the cell The electrode on the left is the anode, and the one on the right is the cathode. Anode half-reaction: +2e Cathode half-reaction: 2 OH Shorthand notation: Shorthand notation: Answer Bank KOH(aq)) (Cu(OH)2(s)) (Ni(s) Ni(OH)2(s), cu(s) Attempt 3 Cu Ni Cu(OH)2(s) Ni(OH)2(s) KOH(aq) Attempt 3 for 0 Cu Ni Cu(OH)2(s)-- 9:31 PM 5/8/2019
b. Write the cell notation for the following redox reaction. Here, Cu+ or CuNO3 is oxidized to Cu2+ or Cu(NO3)2in the oxidation half-cell. Since there is only aqueous species and there is no electrode (metal) in the oxidation half-cell, use platinum (Pt) as an inert electrode in the oxidation half-cell. 3CuNO3(aq) + Au(NO3)3(aq) ⟶ 3Cu(NO3)2(aq) + Au(s)
What is the balanced equation for the galvanic cell reaction expressed using shorthand notation below? Ni(s) 1 Ni2+(aq) Il Cl2(g) Caq) 1 C(s) A Ni(s) + Cl2() -- Ni2+ (aq) + 2CH(aq) B. Ni2+(aq) + 2 Cl(aq) - Ni(s) + Cl2(g) C. N:2+(aq) + 2 C1-(aq) - NiC12(s) D. Ni(s) + 2 C1-(aq) - Ni2+(aq) + C12()