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Example · Example 12

Q.Catenation — the ability of an element to form chains/rings of like atoms bonded to each other — is far stronger in carbon than in the rest of Group 14. Explain this trend in terms of bond enthalpy, and rank the tendency C,Si,Ge,Sn,Pb\text{C}, \text{Si}, \text{Ge}, \text{Sn}, \text{Pb} in decreasing order.

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Catenation — an element's ability to bond to further atoms of itself, building chains, rings or larger networks — depends directly on the strength of the element–element single bond, since a long chain must have many such bonds holding it together reliably. Carbon's C–C single bond is unusually strong (bond enthalpy around 348 kJ mol−1348\ \text{kJ mol}^{-1}), stronger even than a comparable C–H bond in many contexts and far stronger than the corresponding Si–Si bond; this strong, efficient orbital overlap (carbon's compact 2p2p orbitals overlap very effectively with each other) is what allows carbon to build the huge variety of stable chains, rings and networks that underlie all of organic chemistry, as well as network solids like diamond. Moving down Group 14, the atoms become progressively larger and their valence orbitals more diffuse, so orbital overlap between two like atoms becomes progressively weaker and the element–element bond enthalpy falls markedly: Si–Si bonds are noticeably weaker than C–C bonds, Ge–Ge weaker still, and by tin and especially lead, the metal-metal 'bond' is essentially metallic rather than a discrete strong covalent linkage …

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