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Sagot :
Final answer:
Diamond's poor conductivity is due to its covalent bonding structure that lacks free electrons for conducting electricity.
Explanation:
Diamond is a poor conductor of electricity due to its covalent bonding structure. In diamond, each carbon atom forms strong covalent bonds with four other carbon atoms, creating a rigid, three-dimensional lattice, which restricts the movement of electrons. As a result, diamond lacks free electrons required for conducting electricity.
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