The ground state electronic configurations of the elements, U, V, W, X, and Y (these symbols do not β Periodic Table and Periodicity Chemistry Question
Question
The ground state electronic configurations of the elements, U, V, W, X, and Y (these symbols do not have any chemical significance) are as follows : U 1s2 2s2 2p3, V 1s2 2s2 2p6 3s1, W 1s2 2s2 2p6 3s2 3p2, X 1s2 2s2 2p6 3s2 3p6 3d5 4s2, Y 1s2 2s2 2p6 3s2 3p6 3d10 4s2 4p6. Determine which sequence of elements satisfy the following statements : (i) Element forms a carbonate which is not decomposed by heating (ii) Element is most likely to form coloured ionic compounds (iii) Element has largest atomic radius (iv) Element forms only acidic oxide
π‘ Solution & Explanation
Step 1: Analyze the chemical properties and oxidation state tendencies of each option. Cesium is an alkali metal and only exhibits a +1 oxidation state. Fluorine is the most electronegative element and only shows a -1 oxidation state. Step 2: Xenon is a noble gas and shows only positive oxidation states in its compounds with electronegative elements (like XeF2, XeO3) but does not exhibit negative oxidation states. Step 3: Iodine, being a halogen with lower electronegativity, shows a -1 oxidation state in iodides (e.g., KI) and positive oxidation states (like +1, +3, +5, +7) when bonded to highly electronegative elements like fluorine or oxygen (e.g., IF7, I2O5).