Q.State two consequences of lanthanoid contraction for the chemistry of elements beyond the lanthanoid series.
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Start your 14-day free trial to unlock the full solution →Lanthanoid contraction (developed in the previous exercise) operates across the entire block of fourteen lanthanoid elements that sit between lanthanum and hafnium in the periodic table, and this has two well-known, practically significant consequences.
Consequence 1: near-identical radii of 4d/5d congener pairs. Descending a normal d-block group from its second-row (4d) member to its third-row (5d) member would, in the absence of any intervening f-block, be expected to show a substantial increase in radius, exactly as happens on descending from the first row (3d) to the second row (4d). But because the entire fourteen-element lanthanoid contraction occurs in between the second and third transition rows, the radius increase that would otherwise be expected is very nearly cancelled out. As a result, zirconium and hafnium (Group 4), niobium and tantalum (Group 5), and molybdenum and tungsten (Group 6) each show almost identical atomic and ionic radii between their 4d and 5d members -- and, since chemical behaviour is so strongly governed by ionic size, these pairs also show remarkably similar chemical properties. This near-identity is a genuine practical problem: zirconium and hafnium in particular occur together in the same ores and are notoriously difficult to separate by ordinary chemical means, requiring specialized techniques (such as solvent extraction or ion exchange) rather than simple precipitation-based separation. …
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