Q.Cerium and Terbium behaves as good oxidising agents in +4 oxidation state. Explain.
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Start your 14-day free trial to unlock the full solution →Step 1. Recall why Ce4+ and Tb4+ exist as stable +4 species at all. Section 8.12.2 explicitly names Ce4+ as an f0-configuration example and Tb4+ as an f7 (half-filled)-configuration example -- both are lanthanoids that, unusually, form a genuinely accessible +4 state because reaching it lands on one of the chapter's recurring 'extra-stable' f-subshell configurations (empty for Ce, half-filled for Tb).
Step 2. Explain why being an oxidising agent follows from this. Despite +4 being individually stable for these two elements, the +3 state remains the SINGLE dominant, most universally stable oxidation state across the ENTIRE lanthanoid series (Section 8.12). So when Ce4+ or Tb4+ accepts an electron from another species -- being reduced -- it drops to the still more broadly favoured Ce3+/Tb3+ state, a highly thermodynamically favourable step. Because this reduction step is so favourable, Ce4+/Tb4+ readily 'pull' an electron away from whatever species they react with, oxidising that other species in the process, while they themselves get reduced to +3. …
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