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Q.Consider the figure given below (a galvanic cell with a Zinc plate in Zn2+(aq) and a Silver plate in Ag+(aq), connected by a salt bridge, with a galvanometer in the external circuit) and answer the questions that follow:

(i) State the direction of electron flow.
(ii) What is Silver plate, anode or cathode?
(iii) What will happen if salt bridge is removed?
(iv) What will be the value of Ecell at equilibrium?
A galvanic (voltaic) cell: on the LEFT a Zinc electrode (plate labelled Zn) dipping in a beaker of Zn2+(aq) solution; on the RIGHT a Silver — Chemistry question
Figure
Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2025Subjective· 2mImportance★★★★★
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This is a Zn–Ag galvanic (Daniell-type) cell: Zn is the anode (oxidised), Ag is the cathode (reduced).

This is a galvanic cell built from a zinc electrode dipped in Zn2+(aq)Zn^{2+}(aq) and a silver electrode dipped in Ag+(aq)Ag^+(aq), joined by a salt bridge, with a galvanometer in the external circuit.

  1. Direction of electron flow: Zinc (higher reduction potential difference, more easily oxidised) is the anode, where oxidation occurs: Zn→Zn2++2e−Zn \to Zn^{2+} + 2e^-. These electrons flow through the external wire/galvanometer from the zinc electrode to the silver electrode.
  2. Silver plate: At the silver electrode, reduction occurs: Ag++e−→AgAg^+ + e^- \to Ag. A reduction electrode is the cathode, so the silver plate is the cathode. …

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