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What is the hybridization state of the carbon atoms in diamond, graphite, and fullerenes respectivelp Block Elements Chemistry Question

Question

What is the hybridization state of the carbon atoms in diamond, graphite, and fullerenes respectively?

Answer: B

💡 Solution & Explanation

In diamond, each carbon is $sp^3$ hybridized, forming a tetrahedral 3D network. In graphite, carbon atoms are $sp^2$ hybridized in planar hexagonal sheets. In fullerenes, carbon atoms are also $sp^2$ hybridized, forming a curved, closed-cage structure.

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