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Chemistry · Class 9 · Chapter 7: Electrochemistry

8 min

Key points

Definitions

Electrolysis
The process in which electrical energy is used to bring about a non-spontaneous chemical reaction
Electrolyte
A substance that conducts electricity when dissolved in water or when melted due to the presence of mobile ions
Electroplating
The process of depositing a thin layer of one metal on the surface of another metal by means of electrolysis
Galvanic Cell
An electrochemical cell that converts chemical energy into electrical energy by means of spontaneous redox reactions
Faraday
The quantity of electricity required to deposit or liberate one gram equivalent of any substance during electrolysis, equal to 96,500 coulombs

Worked example

Define electrochemistry and explain the process of electrolysis of water. (5 marks)

Electrochemistry is the branch of chemistry that deals with the study of chemical reactions involving electric current. Electrolysis is the process of decomposition of an electrolyte by passing electric current through it. In electrolysis of water, dilute sulphuric acid is added to make water conducting. At cathode (negative electrode): 2H⁺ + 2e⁻ → H₂. At anode (positive electrode): 4OH⁻ → 2H₂O + O₂ + 4e⁻. Hydrogen gas is produced at cathode and oxygen gas at anode in 2:1 ratio.

Common mistakes

Quick recap

Electrochemistry studies chemical reactions involving electric current. Electrolysis decomposes electrolytes using electricity - anode is positive, cathode is negative. Galvanic cells generate electricity from chemical reactions - anode is negative, cathode is positive. Key applications include electroplating, industrial metal extraction, and battery technology.

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