Skip to content
Exercises · 7.30

Q.Depict the galvanic cell in which the reaction Zn(s) + 2Ag +(aq) → Zn2+(aq) +2Ag(s) takes place, Further show:

(i) which of the electrode is negatively charged,
(ii) the carriers of the current in the cell, and
(iii) individual reaction at each electrode.
Yanam CbseNCERTSubjective· 3mImportance★★★★★
51% · 40/78 Questions
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

A galvanic cell converts chemical energy to electrical energy via spontaneous redox reactions. For Zn(s) + 2Ag⁺(aq) → Zn²⁺(aq) + 2Ag(s), the cell is represented as Zn | Zn²⁺ || Ag⁺ | Ag, with the Zn electrode negatively charged, electrons flowing externally from Zn to Ag, and ions carrying current inside the cell.


Why This Cell Works — The Core Idea

A galvanic cell (also called a voltaic cell) is built around a spontaneous redox reaction. The reaction given is:

Zn(s)+2Ag+(aq)→Zn2+(aq)+2Ag(s)\text{Zn(s)} + 2\text{Ag}^+(aq) \rightarrow \text{Zn}^{2+}(aq) + 2\text{Ag(s)}

Zinc metal loses electrons (oxidation) and silver ions gain electrons (reduction). The key is to physically separate these two half-reactions so that electrons must travel through an external wire — that flow is the electric current we can use.

Here we only need the cell representation and the direction of electron flow.


Step-by-Step Construction

1. Identify the two half-reactions

Oxidation (loss of electrons) happens at the anode:

Zn(s)→Zn2+(aq)+2e−\text{Zn(s)} \rightarrow \text{Zn}^{2+}(aq) + 2e^-

Reduction (gain of electrons) happens at the cathode:

Ag+(aq)+e−→Ag(s)\text{Ag}^+(aq) + e^- \rightarrow \text{Ag(s)}

Since each Ag⁺ takes one electron, and Zn gives two, we need two Ag⁺ ions per Zn atom — that's why the balanced equation has a 2 in front of Ag⁺.

2. Determine which electrode is negatively charged

The anode is where oxidation occurs — electrons are produced. This makes the anode the negative terminal (electrons pile up there, ready to flow out). The cathode is where electrons are consumed, so it is the positive terminal.

Watch out

A common mistake: thinking the anode is always positive. In a galvanic cell, the anode is negative because it releases electrons. In an electrolytic cell, the anode is positive. Always check the cell type first.

So: Zn electrode (anode) is negatively charged.

3. Draw the cell representation (cell diagram)

The standard notation for a galvanic cell is:

Anode ∣ anode solution ∣∣ cathode solution ∣ Cathode\text{Anode} \ | \ \text{anode solution} \ || \ \text{cathode solution} \ | \ \text{Cathode}

The single vertical line | represents a phase boundary (solid electrode | solution). The double vertical line || represents the salt bridge (or porous partition) that allows ion flow while keeping solutions separate.

For our reaction:

  • Anode: Zn(s) in contact with Zn²⁺(aq) solution
  • Cathode: Ag(s) in contact with Ag⁺(aq) solution

So the cell diagram is:

Zn(s) ∣ Zn2+(aq) ∣∣ Ag+(aq) ∣ Ag(s)\text{Zn(s)} \ | \ \text{Zn}^{2+}(aq) \ || \ \text{Ag}^+(aq) \ | \ \text{Ag(s)}

4. Identify the carriers of current

Current flows in two ways:

  • External circuit: Electrons travel from the Zn electrode (negative) through the wire to the Ag electrode (positive). This is the electronic current.
  • Inside the cell: Ions carry the charge. In the anode compartment, Zn²⁺ ions go into solution (positive ions increase). In the cathode compartment, Ag⁺ ions are removed from solution (positive ions decrease). The salt bridge supplies anions (like NO₃⁻ or Cl⁻) to the anode side and cations (like K⁺) to the cathode side to maintain electrical neutrality. …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.