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Question
1 mark for review which of the following correctly indicates whether the solid represented by the particulate model shown above conducts electricity and explains why or why not? a it conducts electricity because it is made of positive and negative ions. b it conducts electricity because it is made of particles of different sizes. c it does not conduct electricity because its ions cannot move freely within the solid. d it does not conduct electricity because there are small spaces between the particles.
Step1: Recall the condition for electrical conductivity
For a substance to conduct electricity, there must be free - moving charged particles. In ionic solids, the ions are in fixed positions in the lattice structure.
Step2: Analyze each option
- Option A: Just having positive and negative ions is not sufficient. The ions must be able to move. In a solid ionic lattice, ions are fixed, so this is incorrect.
- Option B: Particle size has no relation to electrical conductivity in this context. Electrical conductivity in ionic substances depends on ion mobility, not particle size. So this is incorrect.
- Option C: In an ionic solid, the ions are held in a fixed lattice structure. They cannot move freely. Since electrical conductivity requires the movement of charged particles (in this case, ions), an ionic solid does not conduct electricity. This is correct.
- Option D: The presence of small spaces between particles is not the reason for lack of electrical conductivity. The key is the absence of free - moving ions. So this is incorrect.
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C. It does not conduct electricity because its ions cannot move freely within the solid.