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Q.Graphite is a covalent solid yet soft and good conductor of electricity. Explain.

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Layered structure + weak interlayer forces make graphite soft; one delocalised electron per carbon makes it a good conductor -- even though the bonding within each layer is fully covalent.

Step 1. In graphite every carbon atom is covalently bonded to only three neighbouring carbon atoms, forming flat two-dimensional hexagonal layers (sheets) -- so graphite is genuinely a covalent solid within each layer.

Step 2. The parallel layers are held to one another not by covalent bonds but by very weak attractive (dispersion) forces. The layers can therefore slip and slide over each other easily, which makes graphite soft (and useful as a lubricant and pencil 'lead'). …

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