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Q.What are Galvanic Cells ? Explain the working of a galvanic cell with a neat sketch taking Daniel cell as example. OR What are fuel cells ? Give the construction of H2, O2 fuel cell.

Telangana TsbieTelangana Board of Intermediate Education 2020Subjective· 8mImportance★★★★★
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Figure — The stem explicitly asks for a neat sketch of the Daniell cell and the answer describes exactly a Zn/ZnSO4 and
Figure — The stem explicitly asks for a neat sketch of the Daniell cell and the answer describes exactly a Zn/ZnSO4 and

A galvanic (voltaic) cell converts the chemical energy released in a spontaneous redox reaction directly into electrical energy; the Daniel cell (Zn/Cu) is the classic example, with oxidation at the zinc anode and reduction at the copper cathode.

Galvanic cell: A galvanic cell (also called a voltaic cell) is an electrochemical device that converts the chemical energy of a spontaneous redox reaction into electrical energy. It consists of two half-cells (electrodes dipped in their respective electrolyte solutions) connected externally by a wire and internally by a salt bridge.

Working of the Daniel cell (Zn–Cu galvanic cell):

The Daniel cell consists of:

  • A zinc electrode dipped in ZnSO₄ solution (the anode/oxidation half-cell).
  • A copper electrode dipped in CuSO₄ solution (the cathode/reduction half-cell).
  • The two half-cells are connected by a salt bridge (containing an inert electrolyte like KCl or KNO₃ in agar-agar gel), which completes the internal circuit and maintains electrical neutrality of both solutions.
  • The electrodes are connected externally through a wire (with a voltmeter/galvanometer).

Represented as: Zn(s)∣ZnSO4(aq)∥CuSO4(aq)∣Cu(s)Zn(s) | ZnSO_4(aq) \| CuSO_4(aq) | Cu(s)

At the anode (Zinc electrode) — Oxidation: Zinc metal loses electrons and goes into solution as Zn²⁺ ions.

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

At the cathode (Copper electrode) — Reduction: Cu²⁺ ions from solution gain electrons and get deposited as copper metal.

Cu2+(aq)+2e−→Cu(s)Cu^{2+}(aq) + 2e^- \rightarrow Cu(s)

Overall cell reaction: …

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